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Implementing public-key cryptography on passive RFID tags is practical

机译:在无源RFID标签上实施公钥加密非常实用

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Passive radio-frequency identification (RFID) tags have long been thought to be too weak to implement public-key cryptography: It is commonly assumed that the power consumption, gate count and computation time of full-strength encryption exceed the capabilities of RFID tags. In this paper, we demonstrate that these assumptions are incorrect. We present two low-resource implementations of a 1,024-bit Rabin encryption variant called WIPR-in embedded software and in hardware. Our experiments with the software implementation show that the main performance bottleneck of the system is not the encryption time but rather the air interface and that the reader's implementation of the electronic product code Class-1 Generation-2 RFID standard has a crucial effect on the system's overall performance. Next, using a highly optimized hardware implementation, we investigate the trade-offs between speed, area and power consumption to derive a practical working point for a hardware implementation of WIPR. Our recommended implementation has a data-path area of 4,184 gate equivalents, an encryption time of 180 ms and an average power consumption of 11 W, well within the established operating envelope for passive RFID tags.
机译:长期以来,人们一直认为无源射频识别(RFID)标签太弱而无法实现公钥加密:通常假定全强度加密的功耗,门数和计算时间超过了RFID标签的能力。在本文中,我们证明了这些假设是不正确的。我们在嵌入式软件和硬件中介绍了一种称为WIPR的1,024位Rabin加密变体的两种低资源实现。我们对软件实现的实验表明,系统的主要性能瓶颈不是加密时间,而是空中接口,并且读者对电子产品代码Class-1 Generation-2 RFID标准的实现对系统的性能至关重要。整体表现。接下来,我们使用高度优化的硬件实现,研究速度,面积和功耗之间的折衷,以得出WIPR硬件实现的实际工作点。我们推荐的实现方案具有4,184门等效当量的数据路径区域,180 ms的加密时间和11 W的平均功耗,完全在无源RFID标签的既定工作范围内。

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