Recent Advances on Physical Layer Security for Wireless Communications

Galagarza Martinez, E. Stevens
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Abstract

of the Thesis Recent Advances on Physical Layer Security for Wireless Communications by Edson Stevens Galagarza Martinez Master of Science in Electrical and Computer Engineering Northeastern University, April 2018 Dr. Edwin A. Marengo Fuentes, Advisor Wireless communications are naturally exposed to important security risks due to their broadcast nature. In contrast with wired communications, no physical medium is isolating the transmission surroundings to a specific path. Traditional methods to reach the goals of communications security rely on algorithms at protocol stack level, which are based on mathematically derived cryptographic protocols. With the tremendous proliferation of wireless devices, and the increase in computational power available for decryption, traditional cryptographic measures may be compromised. To protect communications at the lowest level, physical layer (PHY) security methods have been proposed recently. These techniques aim to ensure secure communications by exploiting the unique characteristics of the physical medium between communicating nodes, effectively reducing the decryption capabilities of an eavesdropper to intercept transmissions. This thesis explains within a general framework the most important PHY layer security schemes. First we explore approaches which utilize the knowledge of the unique channel between communicating nodes to distort a transmitted signal with various kinds of randomizations, in such a way that the intended receivers are unaffected by the distortion, but any other observer will be exposed to it. These techniques, however, introduce several trade-offs between transmission resources and the effectiveness in achieving secrecy. Of particular interest for this investigation is a class of methods which can be referred to as ‘security enhancing techniques’, in which minimal priors about the potential eavesdroppers locations and capabilities are assumed. In this thesis, a wave-based approach to the communication secrecy problem is introduced. An interesting perspective is provided by studying the relation between electromagnetic theory and information theory, the so-called electromagnetic information theory. This allows to properly identify the unavoidable limitations imposed by the laws of electromagnetics to our ability to communicate securely. The proposed model can be extended to the analysis of different signal distortion methodologies and different channel conditions. The
无线通信物理层安全研究进展
论文《无线通信物理层安全的最新进展》作者:Edson Stevens Galagarza Martinez东北大学电气与计算机工程理学硕士,2018年4月Edwin A. Marengo Fuentes博士,Advisor无线通信由于其广播性质,自然会面临重要的安全风险。与有线通信相比,没有物理介质将传输环境隔离到特定的路径上。实现通信安全目标的传统方法依赖于协议栈级别的算法,这些算法基于数学推导的加密协议。随着无线设备的大量使用,以及可用于解密的计算能力的提高,传统的加密措施可能会受到损害。为了保护底层的通信,最近提出了物理层(PHY)安全方法。这些技术旨在通过利用通信节点之间物理介质的独特特性来确保通信的安全,有效地降低了窃听者拦截传输的解密能力。本文在一个总体框架内阐述了最重要的物理层安全方案。首先,我们探索利用通信节点之间独特信道的知识,用各种随机化来扭曲传输信号的方法,以这样一种方式,预期的接收器不受扭曲的影响,但任何其他观察者都将暴露于它。然而,这些技术在传输资源和实现保密的有效性之间引入了一些权衡。本调查特别感兴趣的是一类可以称为“安全增强技术”的方法,其中对潜在窃听者的位置和能力的最小先验假设。本文提出了一种基于波的通信保密方法。通过研究电磁理论与信息论的关系,即所谓的电磁信息论,提供了一个有趣的视角。这允许我们正确地识别电磁定律对我们安全通信能力施加的不可避免的限制。该模型可推广到不同信号失真方法和不同信道条件下的分析。的
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