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A comparison of interval division methods in adaptive IEEE 802.11p–based multi-channel medium access control protocols for vehicular ad hoc networks

机译:车载自组织网络中基于自适应IEEE 802.11p的多通道媒体访问控制协议中间隔划分方法的比较

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Recently, vehicular ad hoc networks, which organize communications between vehicles and between vehicles and infrastructures, have played an important role in providing safe transportation and infotainment applications. To satisfy the various requirements of applications such as delay-bounded transmission of safety packets, a broad bandwidth of non-safety packets, known as medium access control has been developed. In addition, to cope with the frequent topology changes of vehicular ad hoc networks, adaptive IEEE 802.11p–based multi-channel medium access control protocols have been proposed, which can adapt to different traffic conditions. In this article, we focus on such protocols and classify them according to interval division methods. Here, we perform comparisons between these protocols following three main categories: the fixed safety transmission interval, safety and Wireless Access in Vehicular Environment Service Advertisement/Acknowledgment transmission interval, and safety and Wireless Access in Vehicular Environment Service Advertisement transmission interval. We performed simulations in NS-3 under the assumption of saturated throughput for Wireless Access in Vehicular Environment Service Advertisement packets and a Poisson arrival process for the safety packets. From the simulation results, it is evident that the design of a new multi-channel medium access control protocol based on IEEE 802.11p needs to balance the trade-off between transmission delay and packet delivery ratio to be efficient, reliable and adaptive. Moreover, such a medium access control protocol can provide efficient vehicle-to-vehicle and vehicle-to-infrastructure communications, which affect the stability of the vehicular cloud.
机译:近来,组织车辆之间以及车辆与基础设施之间的通信的车辆自组织网络在提供安全的运输和信息娱乐应用中发挥了重要作用。为了满足诸如安全数据包的延迟限制传输之类的应用的各种要求,已经开发了宽带宽的非安全数据包,称为介质访问控制。另外,为了应对车辆自组织网络的频繁拓扑变化,已提出了基于自适应IEEE 802.11p的多通道媒体访问控制协议,该协议可以适应不同的流量条件。在本文中,我们重点介绍此类协议,并根据区间划分方法对它们进行分类。这里,我们在以下三个主要类别之间对这些协议进行比较:固定安全传输间隔,车载环境服务广告/确认传输间隔中的安全和无线访问,以及车载环境服务广告传输中的安全和无线访问间隔。我们在NS-3中进行了模拟,假设车辆环境服务广告包中的无线访问具有饱和吞吐量,而安全包中的泊松到达过程。从仿真结果可以明显看出,基于IEEE 802.11p的新的多通道媒体访问控制协议的设计需要平衡传输延迟和分组传输率之间的折衷,才能高效,可靠和自适应。此外,这种媒体访问控制协议可以提供有效的车辆到车辆和车辆到基础设施的通信,这影响了车辆云的稳定性。

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