论文标题
高频无线链接中的绝对安全性
Absolute Security in High-Frequency Wireless Links
论文作者
论文摘要
防止窃听的安全是任何通信系统设计的主要关注点之一。无线通信通道安全性的许多常见考虑因素都取决于将BOB(预期接收器)测量的信号电平与EVE(Everdropper)访问的信号级别进行比较。当Bob的信噪比超过Eve时,诸如Wyner的Wiletap模型之类的框架(例如,平均而言)链接的安全性。不幸的是,由于这些保证依赖于关于噪声的统计假设,因此EVE仍然可以偶尔成功地解码信息。在广播部门的工程区域中,确切的截距概率恰好为零,我们认为这是绝对安全性的。在这里,我们描述了提供绝对安全性的无线链接的第一个体系结构。我们的方法取决于宽带和高增益天线的固有特性,因此非常适合在毫米波和Terahertz Wireless Systems中实施,通常将使用此类天线。我们在不同频率下利用天线模式的空间最小值,该频率的结合定义了一个广泛的区域,在该区域中,无论其计算能力如何,都可以保证前夕失败,而不论通道中的噪声如何。与常规的零型光束形成方法不同,我们表明,对于对天线配置和功率预算的现实假设,可以在最可能的窃听器位置实现这种绝对安全保证。由于我们使用相对简单的频率 - 词素编码,以及衍射光圈的基本物理,因此这个想法在许多情况下广泛适用。
Security against eavesdropping is one of the key concerns in the design of any communication system. Many common considerations of the security of a wireless communication channel rely on comparing the signal level measured by Bob (the intended receiver) to that accessible to Eve (an eavesdropper). Frameworks such as Wyner's wiretap model ensure the security of a link, in an average sense, when Bob's signal-to-noise ratio exceeds Eve's. Unfortunately, because these guarantees rely on statistical assumptions about noise, Eve can still occasionally succeed in decoding information. The goal of achieving exactly zero probability of intercept over an engineered region of the broadcast sector, which we term absolute security, remains elusive. Here, we describe the first architecture for a wireless link which provides absolute security. Our approach relies on the inherent properties of broadband and high-gain antennas, and is therefore ideally suited for implementation in millimeter-wave and terahertz wireless systems, where such antennas will generally be employed. We exploit spatial minima of the antenna pattern at different frequencies, the union of which defines a wide region where Eve is guaranteed to fail regardless of her computational capabilities, and regardless of the noise in the channels. Unlike conventional zero-forcing beam forming methods, we show that, for realistic assumptions about the antenna configuration and power budget, this absolute security guarantee can be achieved over most possible eavesdropper locations. Since we use relatively simple frequency-multiplexed coding, together with the underlying physics of a diffracting aperture, this idea is broadly applicable in many contexts.