Secure architectures of future emerging cryptography SAFEcrypto

Máire O’Neill, E. O'Sullivan, Gavin McWilliams, Markku-Juhani O. Saarinen, C. Moore, A. Khalid, James Howe, Rafaël del Pino, Michel Abdalla, F. Regazzoni, Felipe Valencia, T. Güneysu, Tobias Oder, A. Waller, Glyn Jones, Anthony Barnett, Robert Griffin, A. Byrne, Bassem Ammar, David Lund
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引用次数: 6

Abstract

Funded under the European Union's Horizon 2020 research and innovation programme, SAFEcrypto will provide a new generation of practical, robust and physically secure post-quantum cryptographic solutions that ensure long-term security for future ICT systems, services and applications. The project will focus on the remarkably versatile field of Lattice-based cryptography as the source of computational hardness, and will deliver optimised public key security primitives for digital signatures and authentication, as well identity based encryption (IBE) and attribute based encryption (ABE). This will involve algorithmic and design optimisations, and implementations of lattice-based cryptographic schemes addressing cost, energy consumption, performance and physical robustness. As the National Institute of Standards and Technology (NIST) prepares for the transition to a post-quantum cryptographic suite B, urging organisations that build systems and infrastructures that require long-term security to consider this transition in architectural designs; the SAFEcrypto project will provide Proof-of-concept demonstrators of schemes for three practical real-world case studies with long-term security requirements, in the application areas of satellite communications, network security and cloud. The goal is to affirm Lattice-based cryptography as an effective replacement for traditional number-theoretic public-key cryptography, by demonstrating that it can address the needs of resource-constrained embedded applications, such as mobile and battery-operated devices, and of real-time high performance applications for cloud and network management infrastructures.
未来新兴加密技术SAFEcrypto的安全架构
在欧盟“地平线2020”研究和创新计划的资助下,SAFEcrypto将提供新一代实用、强大和物理安全的后量子加密解决方案,确保未来ICT系统、服务和应用的长期安全。该项目将专注于基于格的加密技术领域,作为计算硬度的来源,并将为数字签名和身份验证以及基于身份的加密(IBE)和基于属性的加密(ABE)提供优化的公钥安全原语。这将涉及算法和设计优化,以及基于格的加密方案的实现,解决成本、能耗、性能和物理健壮性问题。随着美国国家标准与技术研究院(NIST)准备过渡到后量子加密套件B,敦促构建需要长期安全性的系统和基础设施的组织在架构设计中考虑这种过渡;SAFEcrypto项目将在卫星通信、网络安全和云应用领域为具有长期安全需求的三个实际案例研究提供方案的概念验证演示。我们的目标是通过证明基于点阵的加密技术可以满足资源受限的嵌入式应用程序(如移动和电池供电设备)以及用于云和网络管理基础设施的实时高性能应用程序的需求,来确认基于点阵的加密技术是传统数论公钥加密技术的有效替代品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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