ChirpKey:一种基于微扰压缩感知的基于啁啾级信息的LoRa网络密钥生成方案

Huanqi Yang, Zehua Sun, Hongzhi Liu, Xianjin Xia, Yu Zhang, Tao Gu, G. Hancke, Weitao Xu
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引用次数: 2

摘要

物理层密钥生成在为新兴的LoRa网络建立一对加密密钥方面很有前景。然而,现有的密钥生成系统可能表现不佳,因为在LoRa网络中,由于低数据速率和长距离,信道互易性受到严重损害。为了弥补这一差距,本文提出了一种新的LoRa网络密钥生成系统,称为ChirpKey。我们发现潜在的限制是粗粒度的信道测量和低效的量化处理。为了实现细粒度的信道信息,我们提出了一种新的LoRa特定信道测量方法,该方法本质上分析了LoRa数据包中的啁啾电平变化。此外,我们提出了一种LoRa信道状态估计算法来消除异步信道采样的影响。本文提出了一种新的基于扰动压缩感知的密钥传递方法来代替量化处理,以达到较高的鲁棒性和安全性。在不同的实际环境中进行的评估表明,与目前的技术相比,ChirpKey的密钥匹配率提高了11.03-26.58%,密钥生成率提高了27 - 49倍。安全分析表明,ChirpKey对几种常见的攻击是安全的。此外,我们实现了一个ChirpKey原型,并证明它可以在0.2秒内执行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ChirpKey: A Chirp-level Information-based Key Generation Scheme for LoRa Networks via Perturbed Compressed Sensing
Physical-layer key generation is promising in establishing a pair of cryptographic keys for emerging LoRa networks. However, existing key generation systems may perform poorly since the channel reciprocity is critically impaired due to low data rate and long range in LoRa networks. To bridge this gap, this paper proposes a novel key generation system for LoRa networks, named ChirpKey. We reveal that the underlying limitations are coarse-grained channel measurement and inefficient quantization process. To enable fine-grained channel information, we propose a novel LoRa-specific channel measurement method that essentially analyzes the chirp-level changes in LoRa packets. Additionally, we propose a LoRa channel state estimation algorithm to eliminate the effect of asynchronous channel sampling. Instead of using quantization process, we propose a novel perturbed compressed sensing based key delivery method to achieve a high level of robustness and security. Evaluation in different real-world environments shows that ChirpKey improves the key matching rate by 11.03–26.58% and key generation rate by 27–49× compared with the state-of-the-arts. Security analysis demonstrates that ChirpKey is secure against several common attacks. Moreover, we implement a ChirpKey prototype and demonstrate that it can be executed in 0.2 s.
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