• DocumentCode
    3000361
  • Title

    Deploying Scalable and Secure Secret Sharing with GPU Many-Core Architecture

  • Author

    Chen, Su ; Bai, Ling ; Chen, Yi ; Jiang, Hai ; Li, Kuan-Ching

  • Author_Institution
    Dept. of Comput. Sci., Arkansas State Univ., AR, USA
  • fYear
    2012
  • fDate
    21-25 May 2012
  • Firstpage
    1360
  • Lastpage
    1369
  • Abstract
    Secret sharing is an excellent alternative to the traditional cryptographic algorithms due to its unkeyed encryption/decryption and fault tolerance features. Key management hassle faced in most encryption strategies is removed from users and the loss of a certain number of data copies can be tolerated. However, secret sharing schemes have to deal with two contradictory design goals: security and performance. Without keys\´ involvement, large security margin is expected for the illusion of being computationally secure. In the meantime, such design will degrade the performance of "encrypting" and "decrypting" secrets. Thus, secret sharing is mainly for small data such as keys and passwords. In order to apply secret sharing to large data sets, this paper redesigned the original schemes to balance the security and performance. With sufficient security margin, Graphics Processing Unit (GPU) is adopted to provide the performance satisfaction. The proposed secret sharing scheme with GPU acceleration is a practical choice for large volume data security. It is particularly good for long-term storage for its unkeyed encryption and fault tolerance. Performance analysis and experimental results have demonstrated the effectiveness and efficiency of the proposed scheme.
  • Keywords
    cryptography; fault tolerant computing; graphics processing units; GPU acceleration; GPU many-core architecture; contradictory design goals; cryptographic algorithms; data copy; data security; decrypting secrets; encrypting secrets; encryption strategy; fault tolerance features; graphics processing unit; key management hassle; large data sets; long-term storage; performance analysis; performance satisfaction; secret sharing schemes; secure secret sharing; sufficient security margin; unkeyed decryption; unkeyed encryption; Acceleration; Complexity theory; Encryption; Graphics processing unit; Vectors;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Parallel and Distributed Processing Symposium Workshops & PhD Forum (IPDPSW), 2012 IEEE 26th International
  • Conference_Location
    Shanghai
  • Print_ISBN
    978-1-4673-0974-5
  • Type

    conf

  • DOI
    10.1109/IPDPSW.2012.173
  • Filename
    6270803