Congestion Control Mechanisms in IEEE 802.11p and Sidelink C-V2X

A. Bazzi
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引用次数: 19

Abstract

Connected vehicles are expected to play a major role in the next future to improve safety and traffic efficiency on the road and short-range technologies have been defined to enable the direct exchange of information. To this aim, two solutions are currently the subject of a debate that goes beyond the technician, i.e., IEEE 802.11p and sidelink cellular-vehicle-to-anything (C-V2X). Tested and mature for deployment the first, possibly more efficient the second. In both cases, one of the main aspects is the management of channel congestions, which can cause serious packet losses and have a critical impact on the reliability of applications. Congestions can be managed through different approaches, including the control of transmission power, packet generation frequency, and the adopted modulation and coding scheme. Congestion management has been well studied in IEEE 802.11p, with consolidated algorithms included in the standards, whereas it appears somehow as a new topic looking at C-V2X. In this work, a review of the main congestion control mechanisms and a discussion of their applicability and efficiency in the two technologies is provided. This topic is addressed without focusing on specific algorithms and with the aim to provide general guidelines as a starting point for new proposals.
IEEE 802.11p和Sidelink C-V2X中的拥塞控制机制
预计联网车辆将在未来发挥重要作用,以提高道路安全和交通效率,短程技术已被定义为能够直接交换信息。为了实现这一目标,目前有两种解决方案引起了超越技术人员的争论,即IEEE 802.11p和副链路蜂窝车辆对任何设备(C-V2X)。测试和成熟的部署第一个,可能更有效的第二个。在这两种情况下,一个主要方面是通道拥塞的管理,通道拥塞会导致严重的数据包丢失,并对应用程序的可靠性产生重大影响。拥塞可以通过不同的方法进行管理,包括控制传输功率、分组产生频率以及所采用的调制和编码方案。拥塞管理在IEEE 802.11p中已经得到了很好的研究,标准中包含了整合算法,而它似乎是C-V2X的一个新主题。在这项工作中,回顾了主要的拥塞控制机制,并讨论了它们在两种技术中的适用性和效率。本主题不关注具体算法,目的是提供一般指导方针,作为新提案的起点。
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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