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A multi-radio, multi-hop ad-hoc radio communication network for Communications-Based Train Control (CBTC): Introducing frequency separation for train-to-trackside communication

机译:基于通信的列车控制(CBTC)的多电台,多跳ad-hoc无线电通信网络:引入培训轨道通信的频率分离

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Communications-Based Train Control (CBTC) is a modern signalling system that uses radio communication to transfer train control information between train and wayside. The trackside networks in these systems are mostly based on conventional infrastructure Wi-Fi (IEEE 802.11). It means a train has to continuously associate (i.e. perform handshake) with the trackside Wi-Fi Access Points (AP) as it moves, which incurs communication delays. Additionally, these APs are connected to the wayside infrastructure via optical fiber cables that incur considerable installation costs. Our earlier work presented a novel design in which trackside nodes function in ad-hoc Wi-Fi mode, which means no handshake has to be performed with them prior to transmitting. A node upon receiving packets from a train forwards these packets to the next node, forming a chain of nodes. Following this chain, packets reach the destination. To make the design resilient against interference between the nodes, transmissions are separated on multiple frequencies, ensuring a certain separation between the transmissions. Our previous results exposed a limitation of the design. Since a train node is required to transmits on all frequencies to be able to communicate to the chain with a high probability, the frequency separation guaranteed inside the chain is not achievable in the train-to-chain communication. As a result, the train node's transmissions cause a significant amount of interference on the chain nodes. This paper proposes an extension to the design in which an additional, dedicated frequency is employed for the train-to-chain communication and presents the results from an extensive simulation study.
机译:基于通信的列车控制(CBTC)是一种现代信号系统,它使用无线电通信来传输火车和路边之间的传输列车控制信息。这些系统中的轨道方网络主要基于传统的基础设施Wi-Fi(IEEE 802.11)。它意味着火车必须连续关联(即,执行握手)与轨迹侧Wi-Fi接入点(AP)移动,因为它移动,这会引发通信延迟。另外,这些AP通过光纤电缆连接到路边基础设施,该光纤电缆承受了相当大的安装成本。我们之前的工作提出了一种新颖的设计,其中轨道侧节点在ad-hoc wi-fi模式下函数,这意味着在传输之前,必须没有使用它们进行握手。从列车接收到数据包时的节点将这些分组转发到下一个节点,形成节点链。在此链之后,数据包到达目的地。为了使设计弹性抵抗节点之间的干扰,传输在多个频率上分离,确保传输之间的一定分离。我们以前的结果暴露了对设计的限制。由于需要列车节点以能够以高概率传送到链条的所有频率,因此在培训到链通信中不可能实现链内保证的频率分离。结果,列车节点的传输导致链节点对链节点的大量干扰。本文提出了对设计的延伸,其中采用了额外的专用频率来用于培训到链通信,并提出了广泛的模拟研究的结果。

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