Robust secure charge-sharing symmetric adiabatic logic against side-channel attacks

Robust secure charge-sharing symmetric adiabatic logic against side-channel attacks
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DOI:
10.1109/tsp.2013.6614034
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发表时间:
2013-07
期刊:
2013 36th International Conference on Telecommunications and Signal Processing (TSP)
影响因子:
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通讯作者:
Câncio Monteiro;Yasuhiro Takahashi;T. Sekine
Câncio Monteiro;Yasuhiro Takahashi;T. Sekine
中科院分区:
其他
文献类型:
--
作者:
Câncio Monteiro;Yasuhiro Takahashi;T. Sekine

文献摘要

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本文将我们提出的电荷共享对称绝热逻辑(CSSAL)实现到GF(2 m)上的有限域算法中使用的细胞乘法器中,使用安全系统抵抗侧信道攻击。为了验证我们提出的逻辑,我们已经评估了个别安全绝热逻辑的电流轨迹和能量耗散;建议CSSAL,安全绝热逻辑,对称绝热逻辑,2N-2N 2 P,和传统的三相双轨预充电逻辑。并对GF(2 m)上乘法器的逻辑电阻和能量效率进行了深入的研究和比较。基于SPICE仿真结果,我们可以推断出,所提出的典型逻辑具有较强的抗差分功耗分析能力和较强的抗差分电磁分析攻击能力,因为它具有恒定的低功耗和较低的峰值电流。
This paper implements our proposed charge-sharing symmetric adiabatic logic (CSSAL) into the cellular multiplier used in finite field over GF(2m) arithmetic using secure system for resistant against side-channel attacks. To validate our proposed logic, we have evaluated the current traces and energy dissipation of the individual secure adiabatic logics; proposed CSSAL, secure adiabatic logic, symmetric adiabatic logic, 2N-2N2P, and the conventional three-phase dual-rail pre-charged logic. Furthermore, the thoroughly investigation and comparative study on the logic's resistance and the energy efficiency in the multiplier over GF(2m) have been conducted. Based on the obtained SPICE simulation results, we deduce that, the proposed typical logics is stronger against differential power analysis and more robust for differential electromagnetic analysis attacks, because it consumes constant low power and uniformly low peak current since ever in the literature.