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Towards Round-Optimal Secure Multiparty Computations: Multikey FHE Without a CRS

机译:迈向最佳安全多方计算:没有CRS的多键FHE

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Multikey fully homomorphic encryption (MFHE) allows homomorphic operations between ciphertexts encrypted under different keys. In applications for secure multiparty computation (MPC) protocols, MFHE can be more advantageous than usual fully homomorphic encryption (FHE) since users do not need to agree with a common public key before the computation when using MFHE. In EUROCRYPT 2016, Mukherjee and Wichs constructed a secure MPC protocol in only two rounds via MFHE which deals with a common random/reference string (CRS) in key generation. After then, Brakerski et al. replaced the role of CRS with the distributed setup for CRS calculation to form a four round secure MPC protocol. Thus, recent improvements in round complexity of MPC protocols have been made using MFHE. In this paper, we go further to obtain round-efficient and secure MPC protocols. The underlying MFHE schemes in previous works still involve the common value, CRS, it seems to weaken the power of using MFHE to allow users to independently generate their own keys. Therefore, we resolve the issue by constructing an MFHE scheme without CRS based on LWE assumption, and then we obtain a secure MPC protocol against semi-malicious security in three rounds.
机译:多密钥完全同态加密(MFHE)允许在使用不同密钥加密的密文之间进行同构操作。在用于安全多方计算(MPC)协议的应用程序中,MFHE可能比通常的完全同态加密(FHE)更具优势,因为在使用MFHE时,用户无需在计算前就同意公共公钥。在EUROCRYPT 2016中,Mukherjee和Wichs通过MFHE在仅两轮中构建了一个安全的MPC协议,该协议处理密钥生成中的公共随机/参考字符串(CRS)。之后,Brakerski等人。用用于CRS计算的分布式设置替换了CRS的角色,从而形成了四轮安全MPC协议。因此,最近使用MFHE改进了MPC协议的复杂度。在本文中,我们将进一步获得有效且安全的MPC协议。先前作品中的基础MFHE方案仍然涉及共同值CRS,这似乎削弱了使用MFHE允许用户独立生成自己的密钥的能力。因此,我们通过基于LWE假设构建不带CRS的MFHE方案来解决该问题,然后分三轮获得针对半恶意安全性的安全MPC协议。

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