• DocumentCode
    57744
  • Title

    Secure Bit Commitment From Relativistic Constraints

  • Author

    Kaniewski, Jacek ; Tomamichel, Marco ; Hanggi, E. ; Wehner, Stephanie

  • Author_Institution
    Centre for Quantum Technol., Nat. Univ. of Singapore, Singapore, Singapore
  • Volume
    59
  • Issue
    7
  • fYear
    2013
  • fDate
    Jul-13
  • Firstpage
    4687
  • Lastpage
    4699
  • Abstract
    We investigate two-party cryptographic protocols that are secure under assumptions motivated by physics, namely special relativity and quantum mechanics. In particular, we discuss the security of bit commitment in the so-called split models, i.e., models in which at least one of the parties is not allowed to communicate during certain phases of the protocol. We find the minimal splits that are necessary to evade the Mayers-Lo-Chau no-go argument and present protocols that achieve security in these split models. Furthermore, we introduce the notion of local versus global command, a subtle issue that arises when the split committer is required to delegate noncommunicating agents to open the commitment. We argue that classical protocols are insecure under global command in the split model we consider. On the other hand, we provide a rigorous security proof in the global command model for Kent´s quantum protocol . The proof employs two fundamental principles of modern physics, the no-signaling property of relativity and the uncertainty principle of quantum mechanics.
  • Keywords
    cryptographic protocols; quantum cryptography; quantum theory; Kent quantum protocol; Mayers-Lo-Chau no-go argument; quantum mechanics; relativistic constraints; secure bit commitment; special relativity; split models; two-party cryptographic protocols; Cryptography; Entropy; Mathematical model; Protocols; Registers; Uncertainty; Bit commitment; quantum theory; special relativity;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/TIT.2013.2247463
  • Filename
    6461939