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Path switching: a technique to tolerate dual rail routing imbalances

机译:路径切换:一种容忍双轨布线不平衡的技术

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Dual Rail Precharge (DRP) circuits, which are theoretically secure against differential power analysis attacks, suffer from an implementation problem: balancing the routing capacitance of differential signals. To solve this, four proposals have been put forward: Divided Wave Dynamic Differential Logic (DWDDL) (Tiri and Verbauwhede in DATE ’04, pp. 246–251, [2004]), FatWire (Tiri and Verbauwhede in Cardis 2004, pp. 143–158, [2004]), Backend Duplication (Guilley et al. in Lecture Notes in Computer Science, vol. 3659, pp. 383–397, [2005]) and Three Phase Dual Rail (Bucci et al. in Lecture Notes in Computer Science, vol. 4249, pp. 232–241, [2006]). Of these, three (DWDDL, FatWire, Backend Duplication) proposals alter the routing mechanism of Standard Place and Route tools, which in turn introduces an additional step. The other proposal introduces a third phase which reduces the system’s performance. In this paper we propose a new countermeasure, Path Switching, to address the routing problem in DRP circuits. From SPICE simulations we show that our proposal does not reveal the secret key for up to 300,000 traces, an increase of 75 times over normal Dual Rail circuits and 3000 times over normal single rail circuits.
机译:从理论上说,双轨预充电(DRP)电路可抵抗差分功率分析攻击,但它存在一个实现问题:平衡差分信号的路由电容。为了解决这个问题,提出了四点建议:分波动态差分逻辑(DWDDL)(DATE '04中的Tiri和Verbauwhede,第246-251页,[2004]),FatWire(Cardis 2004中的Tiri和Verbauwhede,第47页)。 143–158,[2004]),后端复制(Guilley等人,在《计算机科学讲座》中,第3659卷,第383–397页,[2005])和三相双轨(Bucci等人,在讲座中)计算机科学,第4249卷,第232-241页,[2006])。其中的三个(DWDDL,FatWire,后端复制)提议改变了标准布局和路由工具的路由机制,这又引入了一个附加步骤。另一个建议引入了第三阶段,该阶段降低了系统的性能。在本文中,我们提出了一种新的对策“路径切换”,以解决DRP电路中的路由问题。从SPICE仿真中我们可以看出,我们的建议并未揭示多达300,000条迹线的秘密密钥,这比普通的双轨电路增加了75倍,比普通的单轨电路增加了3000倍。

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