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Joint Rate and Queue Based Routing for Vehicular Ad-Hoc Networks

机译:车载Ad-Hoc网络基于联合速率和队列的路由

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In recent years, Vehicular Ad-hoc Networks (VANETs) have become important and critical part of the Intelligent Transport System (ITS). VANETs have brought the potential of new services and various applications for emergency, comfort and commercial use. However, designing a practical VANET architecture is still hindered with lot of challenges. One such challenge is to route the data packets from source to destination vehicle as per application specific need without sacrificing the Quality of Service (QoS) requirements. In order to design a practical system that meets the requirements of new applications for VANETs, we propose a new cross-layer approach for efficient and reliable routing. Our proposed model considers the wireless transmission parameters from Physical (PHY) layer as well as the system buffer capacities from the Medium Access Control (MAC) layer to make informed and accurate routing decisions at the network layer. This model can be used to cater for specific application requirements in VANET by applying varying routing decisions depending on node specific attributes such as commodity data, queue backlog and rate allocation. The model exemplifies a multi-hop backpressure architecture in VANET where each vehicle is trying to select the next-hop vehicle on the basis of buffer size (queue backlogs), the data to be send (commodity) as well as the channel rate allocated. The key objective here is the optimal selection of next hop vehicle for information dissemination by integrating these metrics. We classify this as a rational Constraint Driven Problem (CDP) and we explore an optimal solution to this problem. Using a systematic mathematical model formulation and extensive simulations, we present the performance analysis of our exemplary model by deriving values of relevant key performance indicators applicable in such an environment.
机译:近年来,车载自组织网络(VANET)已成为智能运输系统(ITS)的重要组成部分。 VANET为紧急,舒适和商业用途带来了新服务和各种应用的潜力。但是,设计实用的VANET架构仍然面临许多挑战。这样的挑战之一是在不牺牲服务质量(QoS)要求的情况下,根据特定的应用需求将数据包从源车辆路由到目标车辆。为了设计一个满足VANET新应用程序要求的实用系统,我们提出了一种新的跨层方法,以实现高效,可靠的路由。我们提出的模型考虑了来自物理(PHY)层的无线传输参数以及来自介质访问控制(MAC)层的系统缓冲区容量,以便在网络层做出明智而准确的路由决策。通过根据节点特定属性(例如商品数据,队列积压和费率分配)应用不同的路由决策,可以使用此模型来满足VANET中的特定应用程序要求。该模型举例说明了VANET中的多跳背压架构,其中,每辆车都试图根据缓冲区大小(排队积压),要发送的数据(商品)以及分配的信道速率来选择下一跳车。此处的主要目标是通过集成这些指标,为信息传播优化选择下一跳车辆。我们将其归类为理性约束驱动问题(CDP),并探索该问题的最佳解决方案。通过使用系统的数学模型公式化和广泛的模拟,我们通过推导适用于此类环境的相关关键绩效指标的值来介绍示例模型的绩效分析。

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