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Generic Constructions for Verifiably Encrypted Signatures without Random Oracles or NIZKs

机译:没有随机Oracle或NIZK的可验证加密签名的通用构造

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Verifiably encrypted signature schemes (VES) allow a signer to encrypt his or her signature under the public key of a trusted third party, while maintaining public signature verifiability. With our work, we propose two generic constructions based on Merkle authentication trees that do not require non-interactive zero-knowledge proofs (NIZKs) for maintaining verifiability. Both are stateful and secure in the standard model. Furthermore, we extend the specification for VES, bringing it closer to real-world needs. We also argue that statefulness can be a feature in common business scenarios. Our constructions rely on the assumption that CPA (even slightly weaker) secure encryption, "maskable" CMA secure signatures, and collision resistant hash functions exist. "Maskable" means that a signature can be hidden in a verifiable way using a secret masking value. Unmasking the signature is hard without knowing the secret masking value. We show that our constructions can be instantiated with a broad range of efficient signature and encryption schemes, including two lattice-based primitives. Thus, VES schemes can be based on the hardness of worst-case lattice problems, making them secure against subexponential and quantum-computer attacks. Among others, we provide the first efficient pairing-free instantiation in the standard model.
机译:可验证加密的签名方案(VES)允许签名者在受信任的第三方的公钥下加密其签名,同时保持公共签名的可验证性。通过我们的工作,我们提出了两种基于Merkle身份验证树的通用构造,它们不需要非交互的零知识证明(NIZK)即可保持可验证性。在标准模型中,两者都是有状态且安全的。此外,我们扩展了VES规范,使其更接近实际需求。我们还认为,有状态性可能是常见业务场景中的一个功能。我们的构造基于这样的假设,即存在CPA(甚至稍弱)的安全加密,“可屏蔽的” CMA安全签名以及抗冲突的哈希函数。 “可屏蔽”是指可以使用秘密掩码值以可验证的方式隐藏签名。在不知道秘密屏蔽值的情况下很难对签名进行屏蔽。我们表明,可以使用多种有效的签名和加密方案实例化我们的构造,包括两个基于格的基元。因此,VES方案可以基于最坏情况的晶格问题的严重性,从而使其能够抵抗次指数和量子计算机攻击。除其他外,我们在标准模型中提供了第一个有效的免配对实例。

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