低资源设备的节能加密算法

Bassam W. Aboshosha, M. Dessouky, A. El-Sayed
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引用次数: 5

摘要

节能是无线网络设备中最具挑战性的方面之一。这些设备连接在一起以执行特定的任务。这些结构的一个众所周知的例子是无线传感器网络(WSN)。分布式无线传感器网络由多个分布在恶劣区域的节点组成。因此,一旦建立了网络,在至少五年(即网络寿命)之前,更换传感器是不可能的。因此,有必要开发能够尽可能缩短电池寿命的特定能量感知算法。在WSN环境中,安全性和隐私性是保证用户信任的关键因素。由于大多数现代密码算法是为桌面/服务器环境设计的,因此这些算法中的许多无法在这些网络使用的受限设备中实现。对称密钥算法是一种典型的高效、快速的密码系统,在许多领域有着重要的应用。对于计算资源有限的无线传感器网络,基于对称密钥算法的密码系统非常适合这种灵活动态的环境。因此,针对无线网络,提出了一种基于加减运算和紧凑替换盒(S盒)的简单轻量级加密算法(SLEA),该算法具有能耗低、硬件要求简单和安全级别合适等优点。此外,该算法还试图克服公钥和对称密钥协议的局限性。它依赖于Feistel结构的智能版本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy Efficient Encryption Algorithm for Low Resources Devices
Saving energy is one of the most challenging aspects in the wireless network devices. Such devices are connected together to perform a certain task. A well-known example of these structures is the Wireless Sensor Network (WSN). Distributed WSN consists of several spread nodes in a harsh area. Therefore, once network has been established sensors replacement is not a possible option before at least five years which called network lifetime. So, it is a necessity to develop specific energy aware algorithms that could save battery lifetime as much as possible. Security and Privacy are the vital elements which need to be addressed to hold up to the trust of users in WSN environment. Because the majority of modern cryptographic algorithms were designed for desktop/server environments, many of these algorithms cannot be implemented in the constrained devices used by these networks. Symmetric key algorithms are a typically efficient and fast cryptosystem, so it has significant applications in many realms. For a WSN with constraint computational resources, the cryptosystem based on symmetric key algorithms is extremely suitable for such an agile and dynamic environment. Therefore, a Simple Lightweight Encryption Algorithm (SLEA) based on addition and subtraction operations and compact Substitution-boxes (S-boxes) is proposed for wireless networks due to its low energy consumption, simple hardware requirements and suitable level of security. In addition, the algorithm tries to overcome the limitations of both public- and symmetric-key protocols. It relies on a smart version of Feistel structure.
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