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首页> 外文期刊>IEEE transactions on very large scale integration (VLSI) systems >Path-Balanced Logic Design to Realize Block Ciphers Resistant to Power and Timing Attacks
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Path-Balanced Logic Design to Realize Block Ciphers Resistant to Power and Timing Attacks

机译:路径平衡逻辑设计,实现抵抗电源和定时攻击的块密码

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In this paper, binary decision diagram (BDD)-based dual-rail precharge logic circuit schemes have been developed to counter differential power analysis attacks, timing attacks, and early propagation attacks. Different precharge logic schemes (top precharging, top-bottom precharging, bottom precharging, and symmetric nMOS bottom precharging) are presented and evaluated. The hallmark of our circuit schemes is that an identical number of switchings is ensured on each circuit path. The transistors are interconnected to create pull-up and pull-down paths to outputs by way of binary decisions based on the input variables, so as to realize the required Boolean function. A simple synthesis algorithm for mapping a given Boolean function to such a BDD-based circuit is also presented. Experimentation has been carried out on two 4-, 16-, 32-, and 64-bits S-boxes to establish resistance of our circuits to power analysis attack and to highlight the low-power characteristics with the help of attributes such as peak power variance, average power, propagation delay, normalized standard deviation of power, and normalized energy deviation. Differential power attacks such as difference of mean and correlation power analysis have been carried out. Resilience to the early propagation effect is also demonstrated.
机译:在本文中,已经开发出二进制决策图(BDD)基于双轨预充电逻辑电路方案以对抗差分功率分析攻击,定时攻击和早期传播攻击。提供了不同的预充电逻辑方案(顶部预充电,顶部底部预充电,底部预充电和对称NMOS底部预充电)。我们的电路方案的标志是在每个电路路径上确保相同数量的切换。晶体管互连以通过基于输入变量通过二进制决策产生上拉和下拉路径,以实现所需的布尔函数。还提出了一种用于将给定布尔函数映射到这种基于BDD基电路的简单合成算法。实验已经在两个4,16 - ,32个和64位S箱上进行,以建立电路的电阻与功率分析攻击,并在峰值电源的帮助下突出低功耗特性方差,平均功率,传播延迟,功率标准化标准偏差,归一化能量偏差。已经进行了差分功率攻击,例如平均值和相关功率分析的差异。还证明了早期繁殖效果的恢复能力。

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