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Performance evaluation of a multi-radio, multi-hop ad-hoc radio communication network for Communications-Based Train Control (CBTC)

机译:用于基于通信的列车控制(CBTC)的多无线,多跳ad-hoc无线电通信网络的性能评估

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摘要

Communications-Based Train Control (CBTC) is a modern signalling system that uses radio communication to transfer train control information between the train and the wayside. A vast majority of CBTC systems worldwide use IEEE 802.11 Wi-Fi as the radio technology mostly due to its costeffectiveness. The trackside networks in these systems are mostly based on conventional infrastructure Wi-Fi. It means a train has to continuously associate (i.e. perform handshake) with the trackside Wi-Fi Access Points (AP) as it moves. This is a timeconsuming process associated with a certain delay. Additionally, these APs are connected to the wayside infrastructure via optical fiber cables that incurs huge costs. This paper presents a novel design in which trackside nodes function in ad-hoc Wi-Fi mode, which means no association has to be performed with them prior to transmitting. A train simply broadcasts packets to any nodes in its range. A node upon receiving these packets forwards them to the next node and so on, forming a chain of nodes. Following this chain, packets arrive at the destination. To make the design resilient against interference, transmissions are separated on multiple frequencies. Furthermore, redundancy is introduced in the design as a node forwards packets to not only one but two of its neighbors. This paper investigates the performance of the new design from the perspective of resiliency, redundancy and scalability, and presents the results both from a field experiment carried out using prototype hardware and an extensive simulations study.
机译:基于通信的列车控制(CBTC)是一种现代的信号系统,该系统使用无线电通信在列车和路边之间传输列车控制信息。全世界大多数CBTC系统使用IEEE 802.11 Wi-Fi作为无线电技术,主要是因为它具有成本效益。这些系统中的路边网络主要基于常规基础设施Wi-Fi。这意味着火车在移动时必须与路边Wi-Fi接入点(AP)持续关联(即执行握手)。这是与一定延迟相关联的耗时的过程。此外,这些接入点通过光纤电缆连接到路边基础设施,这会产生巨大的成本。本文提出了一种新颖的设计,在该设计中,轨道旁节点以自组织Wi-Fi模式运行,这意味着在传输之前不必与它们进行关联。火车只是将数据包广播到其范围内的任何节点。接收到这些数据包的节点将其转发到下一个节点,依此类推,形成一个节点链。按照此链,数据包到达目的地。为了使设计具有抗干扰能力,传输在多个频率上分开。此外,在设计中引入了冗余,因为节点不仅将数据包转发到其一个邻居,而且还转发两个邻居。本文从弹性,冗余性和可扩展性的角度研究了新设计的性能,并给出了使用原型硬件进行的现场实验和广泛的仿真研究的结果。

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