Physical Layer Security against an Informed Eavesdropper in Underwater Acoustic Channels: Feature Extraction and Quantization

Konstantinos Pelekanakis, S. Yildirim, Georgios Sklivanitis, R. Petroccia, J. Alves, D. Pados
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引用次数: 8

Abstract

During the Rapid Environmental Picture 2018 (REP18) sea trial, two underwater acoustic nodes (Alice and Bob) exchanged 897 channel probes over different ranges and environmental conditions. In this short paper, Alice and Bob independently process their received probes offline with the aim to generate a cryptographic key based on Physical Layer Security (PLS). Using their estimated Channel Impulse Responses (CIRs), they compute and quantize four pre-agreed channel features. Eve is a simulated eavesdropper who is aware of the PLS algorithm, the 3D positions of Alice and Bob and the acoustic properties of the environment. Eve uses the de facto standard Bellhop acoustic simulator to predict the bi-directional CIRs between Alice and Bob and compute her own quantized features. We calculate the Bit Disagreement Ratio (BDR), which is a function of the number of disagreeing bits between a pair of nodes. Our results confirm that the proposed features are robust enough to yield a lower BDR between Alice and Bob than that for Eve. The BDR impact on reconciliation and secret key generation is studied in a subsequent paper [1].
水声信道中针对知情窃听者的物理层安全:特征提取与量化
在快速环境图片2018 (REP18)海试期间,两个水声节点(Alice和Bob)在不同的范围和环境条件下交换了897个通道探头。在这篇短文中,Alice和Bob独立地脱机处理他们接收到的探测,目的是生成基于物理层安全性(PLS)的加密密钥。使用他们估计的信道脉冲响应(CIRs),他们计算和量化四个预先商定的信道特征。Eve是一个模拟的窃听者,她知道PLS算法、Alice和Bob的3D位置以及环境的声学特性。Eve使用事实上的标准Bellhop声学模拟器来预测Alice和Bob之间的双向CIRs,并计算她自己的量化特征。我们计算比特不一致率(BDR),它是一对节点之间不一致比特数的函数。我们的结果证实,所提出的特征具有足够的鲁棒性,可以产生Alice和Bob之间比Eve更低的BDR。后续论文[1]研究了BDR对和解和密钥生成的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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