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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Reliable Hardware Architectures for Cryptographic Block Ciphers LED and HIGHT
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Reliable Hardware Architectures for Cryptographic Block Ciphers LED and HIGHT

机译:加密块密码LED和HIGHT的可靠硬件架构

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摘要

Cryptographic architectures provide different security properties to sensitive usage models. However, unless reliability of architectures is guaranteed, such security properties can be undermined through natural or malicious faults. In this paper, two underlying block ciphers which can be used in authenticated encryption algorithms are considered, i.e., light encryption device and high security and lightweight block ciphers. The former is of the Advanced Encryption Standard type and has been considered area-efficient, while the latter constitutes a Feistel network structure and is suitable for low-complexity and low-power embedded security applications. In this paper, we propose efficient error detection architectures including variants of recomputing with encoded operands and signature-based schemes to detect both transient and permanent faults. Authenticated encryption is applied in cryptography to provide confidentiality, integrity, and authenticity simultaneously to the message sent in a communication channel. In this paper, we show that the proposed schemes are applicable to the case study of simple lightweight CFB for providing authenticated encryption with associated data. The error simulations are performed using Xilinx Integrated Synthesis Environment tool and the results are benchmarked for the Xilinx FPGA family Virtex-7 to assess the reliability capability and efficiency of the proposed architectures.
机译:加密体系结构为敏感的使用模型提供了不同的安全属性。但是,除非保证体系结构的可靠性,否则这些安全属性可能会由于自然或恶意故障而受到破坏。在本文中,考虑了可用于身份验证加密算法的两个基础块密码,即轻型加密设备和高安全性和轻量级块密码。前者属于高级加密标准类型,被认为是区域高效的,而后者构成了Feistel网络结构,适用于低复杂度和低功耗的嵌入式安全应用。在本文中,我们提出了有效的错误检测架构,其中包括使用编码操作数和基于签名的方案进行重新计算的变体,以检测瞬时故障和永久性故障。身份验证加密应用于加密中,以同时为在通信通道中发送的消息提供机密性,完整性和真实性。在本文中,我们表明,所提出的方案适用于简单轻量级CFB的案例研究,该案例可为关联数据提供经过身份验证的加密。使用Xilinx集成综合环境工具进行了误差仿真,并针对Xilinx FPGA系列Virtex-7进行了基准测试,以评估所提出架构的可靠性和效率。

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