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Area and power efficient post-quantum cryptosystem for IoT resource-constrained devices

机译:区域和功率有效的IOT资源受限设备后量子密码系统

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Internet of Things (IoT) connects a myriad of small devices over a huge network, encompassing many different and varied applications and environments. As the IoT network continues to grow, providing end-to-end security over IoT is becoming a paramount issue. To mitigate existing and future security risks within IoT, two important factors should be considered. First, some resource-constrained edge devices have an insufficient area to contain the security part. Second, the advent of quantum computers threatens the security of current public-key cryptography algorithms. In response to these challenges, lattice-based cryptography (LBC) has emerged as a promising technique for IoT security in the quantum era. The feasibility of LBC integration onto resource-constrained devices has been demonstrated in previous research. Multiplication is the main operation in Ring-BinLWE, a type of LBC. In this paper, a new multiplication method is proposed, which is called In-place modular Reduction and anti-circular Rotation Column-based Multiplication (In-place Rot-Col-Mul), and new Ring-BinLWE architecture is designed. In-place Rot-Col-Mul performs a column-based multiplication in which one rotation is executed per cycle. The design was implemented on TSMC-65nm technology and FPGA platforms. ASIC implementation results show a respective improvement in power and area over the state-of-the-art design by 48.42% and 57.8%, respectively.
机译:物联网(物联网)通过庞大的网络连接多数小型设备,包括许多不同和各种应用和环境。随着物联网网络继续增长,提供超过IOT的端到端安全性正在成为最重要的问题。为了减轻IOT内的现有和未来的安全风险,应考虑两个重要因素。首先,一些资源受限的边缘设备具有不足的区域来包含安全部件。其次,量子计算机的出现威胁到当前公钥加密算法的安全性。为了应对这些挑战,基于格子的密码学(LBC)被出现为量子时代的IOT安全的有希望的技术。在以前的研究中,已经证明了LBC集成到资源受限设备上的可行性。乘法是Ring-BinlWe,一种LBC类型的主要操作。在本文中,提出了一种新的乘法方法,该方法称为就地模块化减小和基于反圆旋转柱的乘法(就地腐烂的rot-col-mul),设计了新的环-binlwe架构。就地ROT-COL-MUL执行基于列的乘法,其中每个周期执行一个旋转。该设计在TSMC-65NM技术和FPGA平台上实施。 ASIC实施结果分别显示了最先进的设计中的功率和面积的各自改善48.42%和57.8%。

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