LIMERIC: a linear message rate control algorithm for vehicular DSRC systems

J. Kenney, G. Bansal, C. Rohrs
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引用次数: 117

Abstract

Wireless vehicle-to-vehicle (V2V) and vehicle-to-infrastructure (V2I) communication holds great promise for significantly reducing the human and financial costs of vehicle collisions. A common characteristic of this communication is the broadcast of a device's core state information at regular intervals (e.g. a vehicle's speed and location, or a traffic signal's state and timing). The aggregate of these uncoordinated broadcasts will lead to channel congestion under dense traffic scenarios, with a resulting reduction in the effectiveness of the collision avoidance applications making use of the transmitted information. Active congestion control using distributed techniques is a topic of great interest for establishing the scalability of this technology for deployment. This paper defines a new congestion control algorithm that can be applied to the message rate of devices in this vehicular environment. While other published approaches rely on binary control, the LInear MEssage Rate Integrated Control (LIMERIC) algorithm takes advantage of full precision control inputs that are available on the wireless channel. The result is provable convergence to fair and efficient channel utilization in the deterministic environment, under simple criteria for setting adaptive parameters. This "perfect" convergence avoids the limit cycle behavior inherent to binary control. We also discuss several practical aspects associated with implementing LIMERIC, including: guidelines for the choice of system parameters to obtain desired utilization outcomes, a gain saturation technique that maintains robust stability under all conditions, convergence with asynchronous updates, and the implications of measurement noise for statistical properties of convergence. The paper illustrates key analytical results using MATLAB numerical results, and employs standard NS-2 simulations to demonstrate the performance of LIMERIC in several high density scenarios.
用于车载DSRC系统的线性消息速率控制算法
无线车对车(V2V)和车对基础设施(V2I)通信在显著降低车辆碰撞造成的人员和财务成本方面前景广阔。这种通信的一个共同特点是定期广播设备的核心状态信息(例如,车辆的速度和位置,或交通信号的状态和定时)。这些不协调广播的聚合将导致密集交通场景下的信道拥塞,从而降低使用传输信息的避撞应用程序的有效性。使用分布式技术的主动拥塞控制是建立该技术在部署中的可扩展性的一个非常有趣的主题。本文定义了一种新的拥塞控制算法,可以应用于车辆环境下设备的消息速率。虽然其他已发布的方法依赖于二进制控制,但线性消息速率集成控制(LIMERIC)算法利用了无线信道上可用的全精度控制输入。结果证明,在确定的环境下,在设置自适应参数的简单准则下,收敛于公平有效的信道利用。这种“完美”收敛避免了二元控制固有的极限环行为。我们还讨论了与实现LIMERIC相关的几个实际方面,包括:选择系统参数以获得期望的利用结果的指南,在所有条件下保持鲁棒稳定性的增益饱和技术,异步更新的收敛,以及测量噪声对收敛统计特性的影响。本文利用MATLAB数值结果对关键分析结果进行了说明,并采用标准NS-2仿真验证了LIMERIC在几种高密度场景下的性能。
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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