CLASSICAL AND QUANTUM COMMUNICATIONS IN GRID COMPUTING

被引:0
|
作者
Dima, Mihai Octavian [1 ]
Petre, Marian [1 ]
Aranghel, Dorina [1 ]
Mitrica, Bogdan [1 ]
Dulea, Mihnea [1 ]
Petre, Carmelia [3 ]
Stoica, Mihaela [2 ]
Udrea, Mircea [2 ]
Sterian, Rodica [3 ]
Sterian, Paul [3 ]
Badita, Chivuta Ramona [1 ]
机构
[1] Horia Hulubei Natl Inst Nucl Phys & Engn, R-077125 Magurele, Romania
[2] Natl Inst Laser & Plasma Phys, R-077125 Magurele, Romania
[3] Politehn Univ, R-060042 Bucharest, Romania
来源
关键词
Quantum crypted optical communications; AES encryption; sockets communications;
D O I
暂无
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The Quantum Crypted GRID Port developed under the D11-044 QUANTGRID project financed by the Romanian Center for Programme Management CNMP is presented: specifically the technology developed and the proprietary software used in the project. Quantum crypted communications eliminate the possibility of quantum-computer deciphering of messages (Shor's Lemma), while functioning with a public key exchange scheme - being secure by the very essence of quantum nature: any quantum state measured in any way collapses into one of its projections, thus it cannot be cloned and impossible to keep a copy thereof. The distribution of quantum public key is hence similar to the Vernam cipher (symmetrical - with secret key). The ongoing activities in this technology pertain to GRID communications through optical fiber and allow optimising the quantum security technology and experimenting proprietary algorithms for optimum data-volume/security for this new type of communications.
引用
收藏
页码:403 / 408
页数:6
相关论文
共 50 条
  • [21] Quantum Computing for Enhancing Grid Security
    Eskandarpour, Rozhin
    Gokhale, Pranav
    Khodaei, Amin
    Chong, Frederic T.
    Passo, Aleksi
    Bahramirad, Shay
    [J]. IEEE TRANSACTIONS ON POWER SYSTEMS, 2020, 35 (05) : 4135 - 4137
  • [22] Quantum computing for smart grid applications
    Ullah, Md Habib
    Eskandarpour, Rozhin
    Zheng, Honghao
    Khodaei, Amin
    [J]. IET GENERATION TRANSMISSION & DISTRIBUTION, 2022, 16 (21) : 4239 - 4257
  • [23] An Axiomatization for Quantum Processes to Unifying Quantum and Classical Computing
    Wang, Yong
    [J]. INTERNATIONAL JOURNAL OF THEORETICAL PHYSICS, 2019, 58 (10) : 3295 - 3322
  • [24] An Axiomatization for Quantum Processes to Unifying Quantum and Classical Computing
    Yong Wang
    [J]. International Journal of Theoretical Physics, 2019, 58 : 3295 - 3322
  • [25] QUANTUM STATE TRANSITION DIAGRAMS - A BRIDGE FROM CLASSICAL COMPUTING TO QUANTUM COMPUTING
    Hook, Loyd R.
    Lee, Samuel C.
    [J]. NANOSENSORS, BIOSENSORS, AND INFO-TECH SENSORS AND SYSTEMS 2010, 2010, 7646
  • [26] Classical clock synchronization for quantum communications using the quantum channel
    Lohrmann, Alexander
    Zhai, Aileen
    Mohageg, Makan
    [J]. APPLIED OPTICS, 2023, 62 (32) : 8567 - 8573
  • [27] Classical computing, quantum computing, and Shor's factoring algorithm
    Manin, YI
    [J]. ASTERISQUE, 2000, (266) : 375 - +
  • [28] Technology Strategy and Management From Quantum Computing to Quantum Communications
    Cusumano, Michael A.
    [J]. COMMUNICATIONS OF THE ACM, 2023, 66 (01) : 24 - 27
  • [29] A Survey of Important Issues in Quantum Computing and Communications
    Yang, Zebo
    Zolanvari, Maede
    Jain, Raj
    [J]. IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2023, 25 (02): : 1059 - 1094
  • [30] Dynamics of a Free Particle Using Classical Computing and Quantum Computing: Introducing Quantum Computing to Chemistry Students
    Bhattacharya, Atanu
    Dasgupta, Kalyan
    Paine, Binoy
    [J]. JOURNAL OF CHEMICAL EDUCATION, 2024, 101 (04) : 1599 - 1609