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Stochastic Geometry Modeling of Cellular V2X Communication Over Shared Channels

机译:共享通道上的蜂窝V2X通信的随机几何建模

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摘要

To overcome the limitations of Dedicated Short Range Communications (DSRC) with short range, non-supportability of high density networks, unreliable broadcast services, signal congestion and connectivity disruptions, cellular vehicle-to-everything (C-V2X) communication networks, standardized in 3rd Generation Partnership Project (3GPP) Release 14, have been recently introduced to cover broader vehicular communication scenarios including vehicle-to-vehicle (V2V), vehicle-to-pedestrian (V2P) and vehicle-to-infrastructureetwork (V2I/N). In C-V2X, vehicles can directly communicate over PC5 based dedicated sidelinks called direct mode or V2V communication. However, high vehicle densities may require reuse of cellular spectrum for V2V. Moreover, infrastructure mode communication through V2I/N links can augment V2V communication by enhancing communication range and reliability for enhanced safety along with consistent performance under traffic congestions. Motivated by the stringent connection reliability, spectral efficiency, and coverage requirements in C-V2X, this paper presents the first comprehensive and tractable analytical framework for performance of C-V2X networks over shared V2V and cellular uplink channels, where the transmitting vehicles can deliver their information via infrastructure or direct mode, based on their distances, propagation environments and the bias factor. By practically modeling the vehicles on the roads using the doubly stochastic Cox process and the base-stations, we derive new association probabilities, new success probabilities of infrastructure and direct mode, and overall success probability of the C-V2X communication over shared channels, which are validated by the simulations results. Our results reveal the benefits of our proposed model (possibility of selecting both direct and infrastructure modes over shared channels) compared to V2V network in terms of success probability.
机译:为了克服专用短距离通信(DSRC)的短距离,高密度网络的不支持性,不可靠的广播服务,信号拥塞和连接中断,蜂窝车辆到所有(C-V2X)通信网络的标准化最近引入了第三代合作伙伴计划(3GPP)版本14,以涵盖更广泛的车辆通信场景,包括车对车(V2V),车对行人(V2P)和车对基础设施/网络(V2I / N) )。在C-V2X中,车辆可以通过基于PC5的专用侧链直接通信,称为直接模式或V2V通信。但是,高车辆密度可能需要将蜂窝频谱重新用于V2V。此外,通过V2I / N链路进行的基础架构模式通信可以通过扩大通信范围和可靠性来增强V2V通信,以增强安全性以及在交通拥堵下保持一致的性能。基于C-V2X严格的连接可靠性,频谱效率和覆盖范围要求,本文提出了第一个全面且易于处理的分析框架,用于分析C-V2X网络在共享V2V和蜂窝上行链路信道上的性能,传输车辆可以在其中传输其基于基础设施或直接模式的信息,基于它们的距离,传播环境和偏差因子。通过使用双随机Cox过程和基站对道路上的车辆进行实际建模,我们得出了新的关联概率,基础架构和直接模式的新成功概率以及通过共享信道进行C-V2X通信的总体成功概率,从而得出由仿真结果验证。我们的结果表明,与V2V网络相比,就成功概率而言,我们提出的模型的好处(可以通过共享信道选择直接模式和基础结构模式)。

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