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Implementation of a decoupling based power analysis attack countermeasure

机译:基于去耦的功率分析攻击对策的实现

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This study presents new prototyped evaluation results for the authors' proposed power analysis attack countermeasure architecture based on decoupling individual sensitive modules with low current consumption. The proposed architecture includes a switch box module to randomise internal connections, mixing residual information that may leak through non-ideal switch elements and uneven charge cycles. The two implementations evaluated are a printed circuit board (PCB) developed using stand-alone CMOS components and the post-layout simulation of a circuit developed in 0.18 μm TSMC CMOS technology using Cadence. Both systems were able to protect a decoupled 8-bit XOR module from a correlation power analysis performed using traces collected at the power supply rail for at least 8000 plaintext inputs. The results show that the countermeasure is suitable for both on-chip and on-board designs. Analysis of the measurements collected from the PCB test system demonstrates the need to balance the charge/discharge frequency of the decoupling elements against the operational frequency of the decoupled modules. From the layout, an individual decoupling element was found to be similar in size to the decoupled 8-bit XOR module, with all four decoupling elements occupying a total of 51% of the layout area. This percentage is expected to decrease in the context of larger, more complex systems.
机译:这项研究为作者提出的基于低电流消耗的单个敏感模块去耦的功率分析攻击对策体系结构提供了新的原型评估结果。所提出的体系结构包括一个开关盒模块,用于使内部连接随机化,混合可能通过不理想的开关元件和不均匀充电周期泄漏的剩余信息。评估的两个实现是使用独立CMOS组件开发的印刷电路板(PCB)和使用Cadence以0.18μmTSMC CMOS技术开发的电路的布局后仿真。两种系统都能够保护解耦的8位XOR模块免受使用至少8000个明文输入的电源轨处收集的迹线进行的相关功率分析。结果表明,该对策适用于片上和板载设计。从PCB测试系统收集的测量结果的分析表明,需要在去耦元件的充电/放电频率与去耦模块的工作频率之间取得平衡。从布局中可以发现,单个去耦元件的大小与去耦的8位XOR模块相似,所有四个去耦元件总共占据了布局面积的51%。在更大,更复杂的系统中,预计该百分比会降低。

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