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Information-Theoretically Secret Key Generation for Fading Wireless Channels

机译:用于衰落无线信道的信息理论秘密密钥生成

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The multipath-rich wireless environment associated with typical wireless usage scenarios is characterized by a fading channel response that is time-varying, location-sensitive, and uniquely shared by a given transmitter–receiver pair. The complexity associated with a richly scattering environment implies that the short-term fading process is inherently hard to predict and best modeled stochastically, with rapid decorrelation properties in space, time, and frequency. In this paper, we demonstrate how the channel state between a wireless transmitter and receiver can be used as the basis for building practical secret key generation protocols between two entities. We begin by presenting a scheme based on level crossings of the fading process, which is well-suited for the Rayleigh and Rician fading models associated with a richly scattering environment. Our level crossing algorithm is simple, and incorporates a self-authenticating mechanism to prevent adversarial manipulation of message exchanges during the protocol. Since the level crossing algorithm is best suited for fading processes that exhibit symmetry in their underlying distribution, we present a second and more powerful approach that is suited for more general channel state distributions. This second approach is motivated by observations from quantizing jointly Gaussian processes, but exploits empirical measurements to set quantization boundaries and a heuristic log likelihood ratio estimate to achieve an improved secret key generation rate. We validate both proposed protocols through experimentations using a customized 802.11a platform, and show for the typical WiFi channel that reliable secret key establishment can be accomplished at rates on the order of 10 b/s.
机译:与典型的无线使用场景相关联的多路径丰富的无线环境的特征在于,衰落的信道响应随时间变化,对位置敏感,并且由给定的发射器-接收器对唯一共享。与丰富的散射环境相关的复杂性意味着,短期衰落过程本来就很难预测,并且最好随机地进行建模,并具有在空间,时间和频率上的快速去相关特性。在本文中,我们演示了如何将无线发送器和接收器之间的信道状态用作在两个实体之间构建实用的密钥生成协议的基础。我们首先介绍一种基于衰落过程的电平交叉的方案,该方案非常适合与散射环境较丰富的瑞利和里斯衰落模型。我们的跨层算法很简单,并包含了一种自我认证机制,以防止在协议期间进行消息交换的对抗性操作。由于电平穿越算法最适合于在其基础分布中表现出对称性的衰落过程,因此我们提出了第二种功能更强大的方法,适用于更一般的信道状态分布。第二种方法是通过联合量化高斯过程的观察结果来激发的,但是利用经验测量来设置量化边界,并利用启发式对数似然比估计来提高秘密密钥生成率。我们通过使用定制的802.11a平台进行的实验来验证这两个提议的协议,并显示出典型的WiFi通道可以以10 b / s的速率完成可靠的秘密密钥建立。

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