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Modeling and Analysis of Inter-Vehicle Communication: A Stochastic Geometry Approach

机译:车辆间通信的建模和分析:一种随机几何方法

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摘要

Vehicular communication is the enabling technology for the development of the intelligent transportation systems (ITS), which aims to improve the efficiency and safety of transportation. It can be used for a variety of useful applications such as adaptive traffic control, coordinated braking, emergency messaging, peer-to-peer networking for infotainment services and automatic toll collection etc... Accurate yet simple models for vehicular networks are required in order to understand and optimize their operation. For reliable communication between vehicles, the spectrum access is coordinated via carrier sense multiple access (CSMA) protocol. Existing models either use a simplified network abstraction and access control scheme for analysis or depend on simulation studies. Therefore it is important to develop an analytical model for CSMA coordinated communication between vehicles.ududIn the first part of the thesis, stochastic geometry is exploited to develop a modeling framework for CSMA coordinated inter-vehicle communication (IVC) in a multi-lane highway scenario. The performance of IVC is studied in multi-lane highways taking into account the inter-lane separations and the number of traffic lanes and it is shown that for wide multi-lane highways, the line abstraction model that is widely used in literature loses accuracy and hence the analysis is not reliable. Since the analysis of CSMA in the vehicular setting makes the analysis intractable, an aggressive interference approximation and a conservative interference approximation is proposed for the probability of transmission success. These approximations are tight in the low traffic and high traffic densities respectively.ududIn the subsequent part of the thesis, the developed model is extended to multi-hop IVC because several vehicular applications require going beyond the local communication and efficiently disseminate information across the roads via multi-hops. Two well-known greedy packet forwarding schemes are studied, that impose different tradeoffs between per-hop transmission success probability and forward packet progress, namely, the most forward with fixed radius (MFR) and the nearest with forward progress (NFP). In particular, a tractable and accurate modeling framework is developed to characterize the per-hop transmission success probability and the average forward progress for vehicular networks in a multi-lane highway setup. The developed model reveals the interplay between the spectrum sensing threshold of the CSMA protocol and the packet forwarding scheme. A new performance metric is defined, denoted as the aggregate packet progress (APP), which is a dimensionless quantity that captures the tradeoffs between the spatial frequency reuses efficiency, the per-hop transmission success probability, and the per-hop forward progress of the packets. To this end, in contrary to existing studies, the results show that with the proper manipulation of CSMA threshold, the MFR achieves the highest APP.
机译:车辆通信是用于开发智能交通系统(ITS)的使能技术,该系统旨在提高交通效率和安全性。它可以用于各种有用的应用程序,例如自适应交通控制,协调制动,紧急消息传递,用于信息娱乐服务的对等网络以及自动收费等。为了准确地使用车辆网络,需要精确而简单的模型了解并优化其操作。为了实现车辆之间的可靠通信,频谱访问通过载波侦听多路访问(CSMA)协议进行协调。现有模型要么使用简化的网络抽象和访问控制方案进行分析,要么依赖仿真研究。因此,开发用于车辆之间的CSMA协调通信的分析模型非常重要。 ud ud在本文的第一部分中,利用随机几何结构来开发用于多车辆CSMA协调车辆间通信(IVC)的建模框架。车道公路场景。在考虑多车道间距和行车道数量的情况下,在多车道高速公路上研究了IVC的性能,结果表明,对于宽的多车道高速公路,在文献中广泛使用的线抽象模型会失去准确性,并且因此分析是不可靠的。由于在车辆环境中对CSMA的分析使分析变得困难,因此针对传输成功的可能性提出了积极的干扰近似和保守的干扰近似。这些近似值分别在低流量和高流量密度时比较严格。多跳的道路。研究了两种众所周知的贪婪分组转发方案,它们在每跳传输成功概率和正向分组进度之间施加了不同的折衷,即固定半径最大的正向(MFR)和最近分组的最近正向(NFP)。特别是,开发了一种易于处理且准确的建模框架,以表征多车道公路设置中车辆网络的单跳传输成功概率和平均前进进度。开发的模型揭示了CSMA协议的频谱感知阈值与数据包转发方案之间的相互作用。定义了一个新的性能指标,称为聚合数据包进度(APP),它是一个无量纲的量,它捕获了空间频率复用效率,单跳传输成功概率和单跳向前进展之间的权衡。包。为此,与现有研究相反,结果表明,通过适当地控制CSMA阈值,MFR可获得最高的APP。

著录项

  • 作者

    Farooq Muhammad Junaid;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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