• DocumentCode
    724630
  • Title

    Secure Sampling of Public Parameters for Succinct Zero Knowledge Proofs

  • Author

    Ben-Sasson, Eli ; Chiesa, Alessandro ; Green, Matthew ; Tromer, Eran ; Virza, Madars

  • fYear
    2015
  • fDate
    17-21 May 2015
  • Firstpage
    287
  • Lastpage
    304
  • Abstract
    Non-interactive zero-knowledge proofs (NIZKs) are a powerful cryptographic tool, with numerous potential applications. However, succinct NIZKs (e.g., zk-SNARK schemes) necessitate a trusted party to generate and publish some public parameters, to be used by all provers and verifiers. This party is trusted to correctly run a probabilistic algorithm (specified by the the proof system) that outputs the public parameters, and publish them, without leaking any other information (such as the internal randomness used by the algorithm), violating either requirement may allow malicious parties to produce convincing "proofs" of false statements. This trust requirement poses a serious impediment to deploying NIZKs in many applications, because a party that is trusted by all users of the envisioned system may simply not exist. In this work, we show how public parameters for a class of NIZKs can be generated by a multi-party protocol, such that if at least one of the parties is honest, then the result is secure (in both aforementioned senses) and can be subsequently used for generating and verifying numerous proofs without any further trust. We design and implement such a protocol, tailored to efficiently support the state-of-the-art NIZK constructions with short and easy-to-verify proofs (Parno et al. IEEE S&P \´13, Ben-Sasson et al. USENIX Sec \´14, Danezis et al., ASIACRYPT \´14). Applications of our system include generating public parameters for systems such as Zero cash (Ben-Sasson et al. IEEE S&P \´13) and the scalable zero-knowledge proof system of (Ben-Sasson et al. CRYPTO \´14).
  • Keywords
    cryptography; trusted computing; NIZK; cryptographic tool; multiparty protocol; noninteractive zero-knowledge proofs; probabilistic algorithm; public parameter generation; public parameter sampling security; scalable zero-knowledge proof system; succinct zero knowledge proofs; trusted party; Complexity theory; Cryptography; Encoding; Frequency modulation; Logic gates; Protocols; Servers; distributed key generation; succinct non-interactive arguments; zero knowledge;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Security and Privacy (SP), 2015 IEEE Symposium on
  • Conference_Location
    San Jose, CA
  • ISSN
    1081-6011
  • Type

    conf

  • DOI
    10.1109/SP.2015.25
  • Filename
    7163032