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Adaptive and Optimum Secret Key Establishment for Secure Vehicular Communications

机译:用于安全车辆通信的自适应和最佳秘密建立

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In intelligent transportation systems (ITS), communications between vehicles, i.e. vehicle-to-vehicle (V2V) communications are of greatest importance to facilitate autonomous driving. The current state-of-the-art for secure data exchange in V2V communications relies on public-key cryptography (PKC) consuming significant computational and energy resources for the encryption/decryption process and large bandwidth for the key distribution. To overcome these limitations, physical-layer security (PLS) has emerged as a lightweight solution by exploiting the physical characteristics of the V2V communication channel to generate symmetric cryptographic keys. Currently, key-generation algorithms are designed via empirical parameter settings, without resulting in optimum key-generation performance. In this paper, we devise a key-generation algorithm for PLS in V2V communications by introducing a novel channel response quantisation method that results in optimum performance via analytical parameter settings. Contrary to the current state-of-the-art, the channel responses incorporate all V2V channel attributes that contribute to temporal variability, such as three dimensional (3D) scattering and scatterers' mobility. An extra functionality, namely, Perturbe-Observe (PO), is further incorporated that enables the algorithm to adapt to the inherent non-reciprocity of the V2V channel responses at the legitimate entities. Optimum performance is evidenced via maximisation of the key bit generation rate (BGR) and key entropy (H) and minimisation of the key bit mismatch rate (BMR). A new metric is further introduced, the so-called secret-bit generation rate (SBGR), as the ratio of the number of bits which are successfully used to compose keys to the total amount of channel samples. SBGR unifies BGR and BMR and is thus maximised by the proposed algorithmic process.
机译:在智能交通系统(其)中,车辆之间的通信,即车辆到车辆(V2V)通信是最重要的,以促进自主驾驶。关于V2V通信中的安全数据交换的当前最先进的数据交换依赖于对密钥分发的加密/解密过程的大量计算和能量资源消耗显着的计算和能量资源。为了克服这些限制,通过利用V2V通信信道的物理特性来生成对称加密密钥,物理层安全性(PLS)作为轻量级解决方案。目前,通过经验参数设置设计了键生成算法,而不会导致最佳的键生成性能。在本文中,我们通过引入一种通过分析参数设置导致最佳性能的新型信道响应量化方法,设计了V2V通信中的PLS的关键代算法。与目前的最先进的相反,信道响应包括贡献时间变异性的所有V2V信道属性,例如三维(3D)散射和散射者的移动性。进一步纳入额外的功能,即erburbe观察(PO),使得该算法能够适应合法实体的V2V信道响应的固有非互动。通过最大限度化的关键位生成速率(BGR)和键熵(H)的最大化以及最小化关键位错配率(BMR),可以实现最佳性能。进一步引入了一种新的度量,所谓的秘密比特生成率(SBR),作为成功用于将键与信道样本的总量撰写的比率的比率。 SBR统一BGR和BMR,由所提出的算法过程最大化。

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