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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Novel Reversible Design of Advanced Encryption Standard Cryptographic Algorithm for Wireless Sensor Networks
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Novel Reversible Design of Advanced Encryption Standard Cryptographic Algorithm for Wireless Sensor Networks

机译:无线传感器网络高级加密标准加密算法的新型可逆设计

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摘要

The quantum of power consumption in wireless sensor nodes plays a vital role in power management since more number of functional elements are integrated in a smaller space and operated at very high frequencies. In addition, the variations in the power consumption pave the way for power analysis attacks in which the attacker gains control of the secret parameters involved in the cryptographic implementation embedded in the wireless sensor nodes. Hence, a strong countermeasure is required to provide adequate security in these systems. Traditional digital logic gates are used to build the circuits in wireless sensor nodes and the primary reason for its power consumption is the absence of reversibility property in those gates. These irreversible logic gates consume power as heat due to the loss of per bit information. In order to minimize the power consumption and in turn to circumvent the issues related to power analysis attacks, reversible logic gates can be used in wireless sensor nodes. This shifts the focus from power-hungry irreversible gates to potentially powerful circuits based on controllable quantum systems. Reversible logic gates theoretically consume zero power and have accurate quantum circuit model for practical realization such as quantum computers and implementations based on quantum dot cellular automata. One of the key components in wireless sensor nodes is the cryptographic algorithm implementation which is used to secure the information collected by the sensor nodes. In this work, a novel reversible gate design of 128-bit Advanced Encryption Standard (AES) cryptographic algorithm is presented. The complete structure of AES algorithm is designed by using combinational logic circuits and further they are mapped to reversible logic circuits. The proposed architectures make use of Toffoli family of reversible gates. The performance metrics such as gate count and quantum cost of the proposed designs are rigorously analyzed with respect to the existing designs and are properly tabulated. Our proposed reversible design of AES algorithm shows considerable improvements in the performance metrics when compared to existing designs.
机译:无线传感器节点中的功耗量在电源管理中起着至关重要的作用,因为更多的功能元件集成在较小的空间中并在非常高的频率下操作。此外,功耗对功率分析攻击的方式铺平了方法,其中攻击者获得了嵌入在无线传感器节点中的加密实现中涉及的秘密参数的控制。因此,需要强劲的对策来提供这些系统的充分安全性。传统的数字逻辑门用于在无线传感器节点中构建电路,并且其功耗的主要原因是那些门中没有可逆性属性。由于每个位信息丢失,这些不可逆逻辑门将电源消耗为热量。为了最大限度地减少功耗,然后依靠与功率分析攻击相关的问题,可在无线传感器节点中使用可逆逻辑门。这将焦点从耗电的不可逆门转移到基于可控量子系统的潜在强大的电路。可逆逻辑门理论上消耗零功率,具有精确的量子电路模型,用于实际实现,如量子电脑和基于量子点蜂窝自动机的实现。无线传感器节点中的一个关键组件是加密算法实现,用于保护由传感器节点收集的信息。在这项工作中,提出了一种新颖的128位高级加密标准(AES)加密算法的可逆栅极设计。 AES算法的完整结构是通过使用组合逻辑电路而设计的,并且它们被映射到可逆逻辑电路。拟议的架构利用Toffoli家族的可逆门。相对于现有设计严格地分析了所提出的设计的栅极计数和量子成本,如栅极计数和量子成本,并且正确地制表。我们提出的AES算法的可逆设计显示了与现有设计相比的性能指标的相当大的改进。

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