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Hierarchical Network Architecture for Non-Safety Applications in Urban Vehicular Ad-Hoc Networks

机译:城市车载Ad-Hoc网络中非安全应用的分层网络体系结构

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摘要

In the vehicular ad-hoc networks (VANETs), wireless access in vehicular environments (WAVE) as the core networking technology is suitable for supporting safety-critical applications, but it is difficult to guarantee its performance when transmitting non-safety data, especially high volumes of data, in a multi-hop manner. Therefore, to provide non-safety applications effectively and reliably for users, we propose a hybrid V2V communication system (HVCS) using hierarchical networking architecture: a centralized control model for the establishment of a fast connection and a local data propagation model for efficient and reliable transmissions. The centralized control model had the functionality of node discovery, local ad-hoc group (LAG) formation, a LAG owner (LAGO) determination, and LAG management. The local data propagation indicates that data are transmitted only within the LAG under the management of the LAGO. To support the end-to-end multi-hop transmission over V2V communication, vehicles outside the LAG employ the store and forward model. We designed three phases consisting of concise device discovery (CDD), concise provisioning (CP), and data transmission, so that the HVCS is highly efficient and robust on the hierarchical networking architecture. Under the centralized control, the phase of the CDD operates to improve connection establishment time, and the CP is to simplify operations required for security establishment. Our HVCS is implemented as a two-tier system using a traffic controller for centralized control using cellular networks and a smartphone for local data propagation over Wi-Fi Direct. The HVCS’ performance was evaluated using Veins, and compared with WAVE in terms of throughput, connectivity, and quality of service (QoS). The effectiveness of the centralized control was demonstrated in comparative experiments with Wi-Fi Direct. The connection establishment time measured was only 0.95 s for the HVCS. In the case of video streaming services through the HVCS, about 98% of the events could be played over 16 frames per second. The throughput for the streaming data was between 74% to 81% when the vehicle density was over 50%. We demonstrated that the proposed system has high throughput and satisfies the QoS of streaming services even though the end-to-end delay is a bit longer when compared to that of WAVE.
机译:在车载自组织网络(VANET)中,作为核心联网技术的车载环境中的无线访问(WAVE)适用于支持安全关键型应用程序,但是在传输非安全性数据(尤其是高安全性数据)时,很难保证其性能多跳方式存储大量数据。因此,为了有效,可靠地为用户提供非安全应用程序,我们提出了一种使用分层网络体系结构的混合V2V通信系统(HVCS):用于建立快速连接的集中控制模型和用于高效可靠的本地数据传播模型传输。集中控制模型具有以下功能:节点发现,本地临时组(LAG)形成,LAG所有者(LAGO)确定和LAG管理。本地数据传播指示仅在LAGO管理下在LAG内发送数据。为了支持通过V2V通信进行的端到端多跳传输,LAG外部的车辆采用了存储转发模型。我们设计了三个阶段,包括精简设备发现(CDD),精简配置(CP)和数据传输,因此HVCS在分层网络体系结构上非常高效且可靠。在集中控制下,CDD的阶段可以缩短连接建立时间,CP可以简化安全建立所需的操作。我们的HVCS被实现为两层系统,其中使用流量控制器通过蜂窝网络进行集中控制,而智能手机通过Wi-Fi Direct进行本地数据传播。 HVCS的性能是通过静脉评估的,并在吞吐量,连接性和服务质量(QoS)方面与WAVE进行了比较。 Wi-Fi Direct的对比实验证明了集中控制的有效性。对于HVCS,测得的连接建立时间仅为0.95 s。在通过HVCS提供视频流服务的情况下,大约98%的事件可以每秒播放16帧以上。当车辆密度超过50%时,流数据的吞吐量在74%到81%之间。我们证明,即使与WAVE相比,端到端延迟要长一些,所提出的系统仍具有较高的吞吐量并满足流服务的QoS。

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