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More efficient, provably-secure direct anonymous attestation from lattices

机译:来自晶格的更有效,可证明安全的直接匿名证明

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The Cloud-Edges (CE) framework, wherein small groups of Internet of Things (loT) devices are serviced by local edge devices, enables a more scalable solution to loT networks. The trustworthiness of the network may be ensured with Trusted Platform Modules (TPMs). This small hardware chip is capable of measuring and reporting a representation of the state of an loT device. When connecting to a network, the loT platform might have its state signed by the TPM in an anonymous way to prove both its genuineness and secure state through the Direct Anonymous Attestation (DAA) protocol. Currently standardised DAA schemes have their security supported on the factoring and discrete logarithm problems. Should a quantum-computer become available in the next few decades, these schemes will be broken. There is therefore a need to start developing a post-quantum DAA protocol. This paper presents a Lattice-based DAA (LDAA) scheme to meet this requirement. The security of this scheme is proved in the Universally Composable (UC) security model under the hardness assumptions of the Ring Inhomogeneous Short Integer Solution (Ring-ISIS) and Ring Learning With Errors (Ring-LWE) problems. Compared to the only other DAA scheme with conjectured post-quantum security available in related art, the storage requirements of the TPM are reduced twofold and the signature sizes 5 times. Moreover, experimental results show that the signing and verification operations are accelerated 1.1 and 2.0 times, respectively. (C) 2019 Elsevier B.V. All rights reserved.
机译:云边缘(CE)框架(由本地边缘设备为一小组小组的物联网(loT)设备提供服务)使对loT网络的解决方案更具可扩展性。可以使用可信平台模块(TPM)来确保网络的可信度。这种小型硬件芯片能够测量和报告loT设备状态的表示。连接到网络时,loT平台可能以匿名方式由TPM签名其状态,以通过直接匿名证明(DAA)协议证明其真实性和安全状态。当前,标准化的DAA方案在分解因数和离散对数问题上已支持其安全性。如果量子计算机在未来几十年内可用,这些方案将被打破。因此,需要开始开发量子后DAA协议。本文提出了一种基于晶格的DAA(LDAA)方案来满足这一要求。该方案的安全性已在通用可组合(UC)安全模型中,环不均匀短整数整数解(Ring-ISIS)和带错误的环学习(Ring-LWE)问题的硬度假设下得到证明。与现有技术中仅有的其他具有推测后量子安全性的其他DAA方案相比,TPM的存储需求减少了两倍,签名大小减少了5倍。此外,实验结果表明,签名和验证操作分别加快了1.1倍和2.0倍。 (C)2019 Elsevier B.V.保留所有权利。

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