Retrieving and routing quantum information in a quantum network

被引:22
|
作者
Sazim, S. [1 ]
Chiranjeevi, V. [2 ]
Chakrabarty, I. [2 ]
Srinathan, K. [2 ]
机构
[1] Inst Phys, Bhubaneswar 751005, Orissa, India
[2] Int Inst Informat Technol, Hyderabad 500032, Telangana, India
关键词
SECRET; TELEPORTATION; ENTANGLEMENT; GOOGLE;
D O I
10.1007/s11128-015-1109-7
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
In extant quantum secret sharing protocols, once the secret is shared in a quantum network (qnet) it cannot be retrieved, even if the dealer wishes that his/her secret no longer be available in the network. For instance, if the dealer is part of the two qnets, say and and he/she subsequently finds that is more reliable than , he/she may wish to transfer all her secrets from to . Known protocols are inadequate to address such a revocation. In this work we address this problem by designing a protocol that enables the source/dealer to bring back the information shared in the network, if desired. Unlike classical revocation, the no-cloning theorem automatically ensures that the secret is no longer shared in the network. The implications of our results are multi-fold. One interesting implication of our technique is the possibility of routing qubits in asynchronous qnets. By asynchrony we mean that the requisite data/resources are intermittently available (but not necessarily simultaneously) in the qnet. For example, we show that a source S can send quantum information to a destination R even though (a) S and R share no quantum resource, (b) R's identity is unknown to S at the time of sending the message, but is subsequently decided, (c) S herself can be R at a later date and/or in a different location to bequeath her information ('backed-up' in the qnet) and (d) importantly, the path chosen for routing the secret may hit a dead end due to resource constraints, congestion, etc., (therefore the information needs to be back-tracked and sent along an alternate path). Another implication of our technique is the possibility of using insecure resources. For instance, if the quantum memory within an organization is insufficient, it may safely store (using our protocol) its private information with a neighboring organization without (a) revealing critical data to the host and (b) losing control over retrieving the data. Putting the two implications together, namely routing and secure storage, it is possible to envision applications like quantum mail (qmail) as an outsourced service.
引用
收藏
页码:4651 / 4664
页数:14
相关论文
共 50 条
  • [31] Quantum state transmission over partially corrupted quantum information network
    Hayashi, Masahito
    Song, Seunghoan
    PHYSICAL REVIEW RESEARCH, 2020, 2 (03):
  • [32] Quantum Information Device Based on NV Diamond Centers for Quantum Network
    Nemoto, Kae
    Everitt, Mark S.
    Devitt, Simon J.
    Stephens, Ashley M.
    Trupke, Michael
    Schmiedmayer, Joerg
    2012 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2012,
  • [33] Quantum Routing for Emerging Quantum Networks
    Shi, Wenbo
    Malaney, Robert
    IEEE NETWORK, 2024, 38 (01): : 140 - 146
  • [34] Two-way quantum communication: Generalization of secure quantum information exchange to quantum network
    Maurya, Ajay K.
    Mishra, Manoj K.
    Prakash, Hari
    PRAMANA-JOURNAL OF PHYSICS, 2016, 86 (03): : 515 - 526
  • [35] Two-way quantum communication: Generalization of secure quantum information exchange to quantum network
    AJAY K MAURYA
    MANOJ K MISHRA
    HARI PRAKASH
    Pramana, 2016, 86 : 515 - 526
  • [36] Quantum networks with coherent routing of information through multiple nodes
    Kristjansson, Hler
    Zhong, Yan
    Munson, Anthony
    Chiribella, Giulio
    NPJ QUANTUM INFORMATION, 2024, 10 (01)
  • [37] Perfect routing of quantum information in regular cavity QED networks
    Behzadi, Naghi
    Rudsary, Sobhan Kazemi
    Salmasi, Bahram Ahansaz
    EUROPEAN PHYSICAL JOURNAL D, 2013, 67 (12):
  • [38] Perfect routing of quantum information in regular cavity QED networks
    Naghi Behzadi
    Sobhan Kazemi Rudsary
    Bahram Ahansaz Salmasi
    The European Physical Journal D, 2013, 67
  • [39] DQRA: Deep Quantum Routing Agent for Entanglement Routing in Quantum Networks
    Le, Linh
    Nguyen, Tu N.
    IEEE Transactions on Quantum Engineering, 2022, 3
  • [40] Quantum information transmission in the quantum wireless multihop network based on Werner state
    Shi Li-Hui
    Yu Xu-Tao
    Cai Xiao-Fei
    Gong Yan-Xiao
    Zhang Zai-Chen
    CHINESE PHYSICS B, 2015, 24 (05) : 050308