Adaptive Zero-Knowledge Proofs and Adaptively Secure Oblivious Transfer

被引:0
|
作者
Lindell, Yehuda [1 ]
Zarosim, Hila [1 ]
机构
[1] Bar Ilan Univ, Dept Comp Sci, IL-52100 Ramat Gan, Israel
来源
THEORY OF CRYPTOGRAPHY, 6TH THEORY OF CRYPTOGRAPHY CONFERENCE, TCC 2009 | 2009年 / 5444卷
关键词
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
In the setting of secure computation, a set of parties wish to securely compute some function of their inputs, in the presence of an adversary. The adversary in question may be static (meaning that it controls a predetermined subset of the parties) or adaptive (meaning that it can choose to corrupt parties during the protocol execution and based on what it sees). In this paper, we study two fundamental questions relating to the basic zero-knowledge and oblivious transfer protocol problems: Adaptive zero-knowledge proofs: We ask whether it is possible to construct adaptive zero-knowledge proofs (with unconditional soundness). Beaver (STOC 1996) showed that known zero-knowledge proofs are not adaptively secure, and in addition showed how to construct zero-knowledge arguments (with computational soundness). Adaptively secure oblivious transfer: All known protocols for adaptively secure oblivious transfer rely on seemingly stronger hardness assumptions than for the case of static adversaries. We ask whether this is inherent, and in particular, whether it is possible to construct adaptively secure oblivious transfer from enhanced trapdoor permutations alone. We provide surprising answers to the above questions, showing that achieving adaptive security is sometimes harder than achieving static security, and sometimes not. First, we show that assuming the existence of one-way functions only, there exist adaptive zero-knowledge proofs for all languages in NP. In order to prove this, we overcome the problem that all adaptive zero-knowledge protocols known until now used equivocal commitments (which would enable an all-powerful prover to cheat). Second, we prove a black-box separation between adaptively secure oblivious transfer and enhanced trapdoor permutations. As a corollary, we derive a black-box separation between adaptively and statically securely oblivious transfer. This is the first black-box separation to relate to adaptive security and thus the first evidence that it is indeed harder to achieve security in the presence of adaptive adversaries than in the presence of static adversaries.
引用
收藏
页码:183 / 201
页数:19
相关论文
共 50 条
  • [31] MINIMUM RESOURCE ZERO-KNOWLEDGE PROOFS
    KILIAN, J
    MICALI, S
    OSTROVSKY, R
    30TH ANNUAL SYMPOSIUM ON FOUNDATIONS OF COMPUTER SCIENCE, 1989, : 474 - 479
  • [32] On the concurrent composition of zero-knowledge proofs
    Richardson, R
    Kilian, J
    ADVANCES IN CRYPTOLOGY - EUROCRYPT'99, 1999, 1592 : 415 - 431
  • [33] Zero-knowledge proofs for finite field arithmetic, or:: Can zero-knowledge be for free?
    Cramer, R
    Damgård, I
    ADVANCES IN CRYPTOLOGY - CRYPTO'98, 1998, 1462 : 424 - 441
  • [34] Zero-knowledge sets with short proofs
    Catalano, Dario
    Fiore, Dario
    Messina, Mariagrazia
    ADVANCES IN CRYPTOLOGY - EUROCRYPT 2008, 2008, 4965 : 433 - +
  • [35] Symbolic Malleable Zero-knowledge Proofs
    Backes, Michael
    Bendun, Fabian
    Maffei, Matteo
    Mohammadi, Esfandiar
    Pecina, Kim
    2015 IEEE 28TH COMPUTER SECURITY FOUNDATIONS SYMPOSIUM CSF 2015, 2015, : 412 - 426
  • [36] MINIMUM RESOURCE ZERO-KNOWLEDGE PROOFS
    KILIAN, J
    MICALI, S
    OSTROVSKY, R
    LECTURE NOTES IN COMPUTER SCIENCE, 1990, 435 : 545 - 557
  • [37] ZERO-KNOWLEDGE PROOFS OF COMPUTATIONAL POWER
    YUNG, M
    LECTURE NOTES IN COMPUTER SCIENCE, 1990, 434 : 196 - 207
  • [38] Experimenting with Zero-Knowledge Proofs of Training
    Garg, Sanjam
    Goel, Aarushi
    Jha, Somesh
    Mahloujifar, Saeed
    Mahmoody, Mohammad
    Policharla, Guru-Vamsi
    Wang, Mingyuan
    PROCEEDINGS OF THE 2023 ACM SIGSAC CONFERENCE ON COMPUTER AND COMMUNICATIONS SECURITY, CCS 2023, 2023, : 1880 - 1894
  • [39] Zero-Knowledge Sets With Short Proofs
    Catalano, Dario
    Di Raimondo, Mario
    Fiore, Dario
    Messina, Mariagrazia
    IEEE TRANSACTIONS ON INFORMATION THEORY, 2011, 57 (04) : 2488 - 2502
  • [40] Zero-Knowledge Proofs with Witness Elimination
    Kiayias, Aggelos
    Zhou, Hong-Sheng
    PUBLIC KEY CRYPTOGRAPHY-PKC 2009, PROCEEDINGS, 2009, 5443 : 124 - 138