• Chinese Journal of Quantum Electronics
  • Vol. 27, Issue 5, 573 (2010)
[in Chinese]*
Author Affiliations
  • [in Chinese]
  • show less
    DOI: Cite this Article
    [in Chinese]. Quantum information splitting of arbitrary two-particle state using two GHZ states[J]. Chinese Journal of Quantum Electronics, 2010, 27(5): 573 Copy Citation Text show less
    References

    [1] Hillery M, Bǔzek V, Berthiaume A. Quantum secret sharing [J]. Phys. Rev. A, 1999, 59(3): 1829-1834.

    [2] Cleve R, Gott D, Lo H K. How to share a quantum secret [J]. Phys. Rev. Lett., 1999, 83(3): 648-651.

    [3] Karlsson A, Koashi M, Imoto N. Quantum entanglement for secret sharing and secret splitting [J]. Phys. Rev. A, 1999, 59(1): 162-168.

    [4] Bandyopadhyay S. Teleportation and secret sharing with pure entangled states [J]. Phys. Rev. A, 2000, 62: 012308.

    [5] Hsu L Y. Quantum secret-sharing protocol based on Grover’s algorithm [J]. Phys. Rev. A, 2003, 68: 022306.

    [6] Guo G P, Guo G C. Quantum secret sharing without entanglement [J]. Phys. Lett. A, 2003, 310: 247-251.

    [7] Lance A M, Symul T, et al. Tripartite quantum state sharing [J]. Phys. Rev. Lett., 2004, 92(17): 177903.

    [8] Lance A M, Symul T, et al. Continuous-variable quantum-state sharing via quantum disentanglement [J]. Phys. Rev. A, 2005, 71: 033814.

    [9] Zhang Z J. Multiparty secret sharing of quantum information via cavity QED [J]. Opt. Commun., 2006, 261: 199-202.

    [10] Li X, Long G L, et al. Efficient multiparty quantum-secret-sharing schemes [J]. Phys. Rev. A, 2004, 69: 052307.

    [11] Deng F G, Long G L, et al. An efficient quantum secret sharing scheme with Einstein-Podolsky-Rosen pairs [J]. Phys. Lett. A, 2005, 340: 43-50.

    [12] Zhang Z J, et al. Multiparty quantum secret sharing of classical messages based on entanglement swapping [J]. Phys. Rev. A, 2005, 72: 022303.

    [13] Gordon G, Rigolin G. Generalized quantum-state sharing [J]. Phys. Rev. A, 2006, 73: 062316.

    [14] Li Y M, et al. Multiparty secret sharing of quantum information based on entanglement swapping [J]. Phys. Lett. A, 2004, 324: 420-424.

    [15] Deng F G, Zhou H Y, Long G L. Bidirectional quantum secret sharing and secret splitting with polarized single photons [J]. Phys. Lett. A, 2005, 337: 329-334.

    [16] Qin S J, Gao F, et al. Improving the security of multiparty quantum secret sharing against an attack with a fake signal [J]. Phys. Lett. A, 2006, 357: 101-103.

    [17] Deng F G, Li X H, et al. Multiparty quantum-state sharing of an arbitrary two-particle state with Einstein-Podolsky-Rosen pairs [J]. Phys. Rev. A, 2005, 72: 044301.

    [18] Zheng S B. Splitting quantum information via W states [J]. Phys. Rev. A, 2006, 74: 054303.

    [20] Deng F G, Li X H, et al. Multiparty quantum secret splitting and quantum state sharing [J]. Phys. Lett. A, 2006, 354: 190-195.

    [21] Wang H F, Ji X, Zhang S. Improving the security of multiparty quantum secret splitting and quantum state sharing [J]. Phys. Lett. A, 2006, 358: 11-14.

    [22] Wang Z Y, Liu Y M, et al. Generalized quantum state sharing of arbitrary unknown two-qubit state [J]. Opt. Commun., 2007, 276: 322-326.

    [24] Zhang Z J, Cheung C Y. Minimal classical communication and measurement complexity for quantum information splitting [J]. J. Phys. B, 2008, 41: 015503.

    [in Chinese]. Quantum information splitting of arbitrary two-particle state using two GHZ states[J]. Chinese Journal of Quantum Electronics, 2010, 27(5): 573
    Download Citation