Quantum permutation pad for universal quantum-safe cryptography

被引:14
|
作者
Kuang, Randy [1 ]
Barbeau, Michel [2 ]
机构
[1] Quantropi Inc, Ottawa, ON K1Z 8P9, Canada
[2] Carleton Univ, Sch Comp Sci, Ottawa, ON K1S 5B6, Canada
关键词
Cryptography; Post-quantum cryptography; Quantum computing; Quantum permutation pad; KEY DISTRIBUTION; PARAMETERS; LOGARITHMS;
D O I
10.1007/s11128-022-03557-y
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Classical cryptographic techniques are currently under the growing quantum computing threat. New techniques that quantum computing algorithms cannot break are urgently needed. We present such an encryption method. It builds upon quantum permutation logic gates or quantum permutation pads. It is universal in that it can be equally employed on classical computers, today's Internet, and the upcoming quantum Internet. While the cryptographic technique is formulated in a quantum computing framework, it does not rely on physical properties uniquely present at the quantum level, such as no-cloning or entanglement of data. It achieves with today's technology a level of security comparable to what will be possible to attain with tomorrow's quantum technology. The mathematics behind the cryptographic technique, quantum representations of a symmetric group over a computational basis, is surprisingly simple. However, the challenge faced by an adversary wishing to break the code is intractable and uninterpretable, a property of Shannon's perfect secrecy. We believe that the cryptographic technique presented in this article can be used in several different ways and modes. It can be integrated into numerous current Internet protocols, or the Internet of Things, making them quantum safe. In addition, it can be used to transition to the upcoming Internet quantum technology smoothly.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Integrating and Evaluating Quantum-safe TLS in Database Applications
    Tueno, Anselme
    Boehm, David
    Choe, Shin Ho
    DATA AND APPLICATIONS SECURITY AND PRIVACY XXXVI, DBSEC 2022, 2022, 13383 : 259 - 278
  • [42] Evaluation framework for quantum security risk assessment: A comprehensive strategy for quantum-safe transition
    Baseri, Yaser
    Chouhan, Vikas
    Ghorbani, Ali
    Chow, Aaron
    COMPUTERS & SECURITY, 2025, 150
  • [43] Quantum-Safe Metro Network With Low-Latency Reconfigurable Quantum Key Distribution
    Tang, Xinke
    Wonfor, Adrian
    Kumar, Rupesh
    Penty, Richard, V
    White, Ian H.
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2018, 36 (22) : 5230 - 5236
  • [44] Towards a quantum-safe 5G: Quantum Key Distribution in core networks
    Atutxa, Asier
    Sanz, Ane
    Sasiain, Jorge
    Astorga, Jasone
    Jacob, Eduardo
    COMPUTER COMMUNICATIONS, 2024, 224 : 145 - 158
  • [45] A Permutation Dispatch Circuit Design for Quantum Permutation Pad Symmetric Encryption
    Burge, Iain
    Minh Thong Mai
    Barbeau, Michel
    2024 13TH INTERNATIONAL CONFERENCE ON COMMUNICATIONS, CIRCUITS AND SYSTEMS, ICCCAS 2024, 2024, : 35 - 40
  • [46] Deriving Government Roles for directing and supporting Quantum-safe Transitions
    Kong, Ini
    Janssen, Marijn
    Bharosa, Nitesh
    PROCEEDINGS OF THE 25TH ANNUAL INTERNATIONAL CONFERENCE ON DIGITAL GOVERNMENT RESEARCH, DGO 2024, 2024, : 507 - 514
  • [47] POSTER: A Transparent Remote Quantum Random Number Generator over a Quantum-Safe Link
    Kozlovics, Sergejs
    Viksna, Juris
    APPLIED CRYPTOGRAPHY AND NETWORK SECURITY WORKSHOPS, ACNS 2022, 2022, 13285 : 595 - 599
  • [48] Remote Quantum-Safe Authentication of Entities with Physical Unclonable Functions
    Nikolopoulos, Georgios M.
    PHOTONICS, 2021, 8 (07)
  • [49] A chosen-plaintext attack on quantum permutation pad
    Piotr Zawadzki
    Quantum Information Processing, 23