Quantum key distribution over FSO channel using error reconciliation protocol

被引:2
|
作者
Mallick, Bandana [1 ]
Parida, Priyadarsan [1 ]
Nayak, Chittaranjan [2 ]
Sahoo, Pritam Keshari [3 ]
Palai, Gopinath [4 ]
机构
[1] GIET Univ, Dept Elect & Commun Engn, Rayagada 765022, Orissa, India
[2] Vellore Inst Technol, Sch Elect Engn, Dept Commun Engn, Vellore 632014, Tamil Nadu, India
[3] Siksha O Anusandhan Univ, Dept Elect & Commun Engn, ITER, Bhubaneswar, Orissa, India
[4] GITA Autonomous Coll, Dept Elect & Commun Engn, Bhubaneswar, Orissa, India
关键词
Quantum key distribution; CASCADE protocol; Information reconciliation; Privacy amplification; CRYPTOGRAPHY; PERFORMANCE; INFORMATION; SECURITY;
D O I
10.1007/s11276-023-03289-6
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Quantum key distribution (QKD) has evolved as a robust way of secret key distribution based on renowned modern physics concepts. To transmit sensitive information in the government, private, and personal sectors, high-security levels are now necessary. All conventional cryptographic algorithms applied in the communication models, which rely on mathematical models and conceptual assumptions, are unsecure. Thus, QKD systems are the best choice for protecting this information as a countermeasure since they provide unconditional security. In this paper, a design is proposed for the FSO channel using the CASCADE protocol under different atmospheric condition such as haze, rain and snow. The suggested framework's effectiveness and security in the context of QKD with two non-orthogonal photon states are assessed. Simulation results of this model show the percentage of original sequence recovery; the number of errors removed, optical spectrum at transmitter and receiver for a base frame length of 10(4) bits. Moreover, Error correction is calculated per iteration to improve signal quality at the receiver side and compared to previous work. The calculated value in this article shows a better result. Hence, both the sender and the receiver could achieve a security key using this method.
引用
收藏
页码:2161 / 2169
页数:9
相关论文
共 50 条
  • [31] Quantum key distribution using a two-way quantum channel
    Lucamarini, Marco
    Mancini, Stefano
    THEORETICAL COMPUTER SCIENCE, 2014, 560 : 46 - 61
  • [32] LDPC error correction in the context of Quantum Key Distribution
    Nakassis, Anastase
    Mink, Alan
    QUANTUM INFORMATION AND COMPUTATION X, 2012, 8400
  • [33] A practical protocol for three-party authenticated quantum key distribution
    Guan, D. J.
    Wang, Yuan-Jiun
    Zhuang, E. S.
    QUANTUM INFORMATION PROCESSING, 2014, 13 (11) : 2355 - 2374
  • [34] On the Performance of Quantum Key Distribution FSO Systems Under a Generalized Pointing Error Model
    Zhao, Hui
    Alouini, Mohamed-Slim
    IEEE COMMUNICATIONS LETTERS, 2019, 23 (10) : 1801 - 1805
  • [35] A Study on Information Reconciliation Problem in Quantum Key Distribution
    Toyran, Mustafa
    2016 24TH SIGNAL PROCESSING AND COMMUNICATION APPLICATION CONFERENCE (SIU), 2016, : 157 - 160
  • [36] Fundamental Finite Key Limits for Information Reconciliation in Quantum Key Distribution
    Tomamichel, Marco
    Martinez-Mateo, Jesus
    Pacher, Christoph
    Elkouss, David
    2014 IEEE INTERNATIONAL SYMPOSIUM ON INFORMATION THEORY (ISIT), 2014, : 1469 - 1473
  • [37] Single trace side-channel attack on key reconciliation in quantum key distribution system and its efficient countermeasures
    Park, Dongjun
    Kim, GyuSang
    Heo, Donghoe
    Kim, Suhri
    Kim, HeeSeok
    Hong, Seokhie
    ICT EXPRESS, 2021, 7 (01): : 36 - 40
  • [38] Key Reconciliation for High Performance Quantum Key Distribution
    Martinez-Mateo, Jesus
    Elkouss, David
    Martin, Vicente
    SCIENTIFIC REPORTS, 2013, 3
  • [39] Fundamental finite key limits for one-way information reconciliation in quantum key distribution
    Tomamichel, Marco
    Martinez-Mateo, Jesus
    Pacher, Christoph
    Elkouss, David
    QUANTUM INFORMATION PROCESSING, 2017, 16 (11)
  • [40] The Influence of Signal Polarization on Quantum Bit Error Rate for Subcarrier Wave Quantum Key Distribution Protocol
    Gaidash, Andrei
    Kozubov, Anton
    Medvedeva, Svetlana
    Miroshnichenko, George
    ENTROPY, 2020, 22 (12) : 1 - 10