Paper
24 October 2017 A new quantum private comparison protocol
Author Affiliations +
Proceedings Volume 10464, AOPC 2017: Fiber Optic Sensing and Optical Communications; 104640M (2017) https://doi.org/10.1117/12.2284477
Event: Applied Optics and Photonics China (AOPC2017), 2017, Beijing, China
Abstract
For two participants to compare the equality of their private information without revealing them, a new quantum private protocol with the help of semi-honest third party TP is proposed. Different from previous protocols, the four particle |Wf⟩ state and the |χ+⟩ state are utilized in this protocol as the carriers of quantum information and form the entanglement swapping as basic principle. The simple measurement of quantum states and exclusive-or operation are only required to conduct in this protocol. What’s more, this protocol can compare two bits of two participants’ private information in every comparison time. Meanwhile, it needs no unitary operation to fulfill this protocol. This protocol is feasible and efficient to execute through these aspects. In the end, the security of this protocol is analyzed at great length from two kinds of attacks including the outside attack and the participant attack. And the analysis result shows that this protocol can withstand various kinds of attacks and be secure to perform efficiently.
© (2017) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Ling Xu, Jing Wang, Hafeez Ahmed, and Zhiwen Zhao "A new quantum private comparison protocol", Proc. SPIE 10464, AOPC 2017: Fiber Optic Sensing and Optical Communications, 104640M (24 October 2017); https://doi.org/10.1117/12.2284477
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Quantum cryptography

Quantum information

Quantum computing

RELATED CONTENT

Quantum technology’s role in cybersecurity
Proceedings of SPIE (March 02 2023)
Discrimination of entangled quantum states
Proceedings of SPIE (December 16 2022)
Quantum memory: write, read, reset, and decoherence
Proceedings of SPIE (August 04 2003)
Coherence-induced entanglement
Proceedings of SPIE (August 25 2005)

Back to Top