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IEEE 802.11p under congestion in an Infrastructure-to-Vehicle communication approach

机译:IEEE 802.11p在基础设施到车辆通信方法中的拥塞

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Possible applications of the so-called Intelligent Transportation Systems, or connected vehicles, range from critical to trivial and comprise road safety, traffic and transportation efficiency, and infotainment. The networks underlying these applications are under development and test, but few works are available in the literature that present results from real testbeds. This article is about the performance of IEEE 802.11p networks under congestion in vehicular environments, analysed from an infrastructure-centric point of view. In particular, as no assumptions are made about the communication behavior of vehicles, the paper is a starting point in answering the question of how much guarantees the standardized technologies are able to provide in worst-case scenarios of network congestion. An IEEE 802.11p first physical testbed has been developed, and it has been used to perform tests on latency, bandwidth, and packet losses with real network traffic. Although to answer the question completely tests with farther distances and different devices have to be made, these first results appear promising. The RoadSide Units ability to deliver critical messages does take a hit during signaling storms generated by vehicles, but due to the small size and connection-less nature of the packets expected to be employed, some bandwidth remains available, although some redundancy mechanism, carefully designed, might be needed to overcome relatively high packet loss ratios.
机译:所谓的智能运输系统或连接的车辆的可能应用范围从琐碎,包括道路安全,交通和运输效率和信息娱乐。这些应用程序的网络正在开发和测试下,但在实际测试床的结果中有很少的作品可用。本文是关于IEEE 802.11p网络在车辆环境中拥塞下的性能,从基础设施为中心的视图分析。特别地,由于没有关于车辆的通信行为的假设,因此该论文是回答标准化技术能够在网络拥塞中最坏情况下提供多少保证的问题。已经开发了IEEE 802.11p第一个物理测试用用,并且它已被用于对具有真实网络流量的延迟,带宽和数据包丢失进行测试。虽然回答问题完全测试,但必须进行更远的距离和不同的设备,但这些第一个结果看起来很有希望。交付关键消息的路边单位确实在车辆产生的信号风暴期间受到击中,但由于预期的数据包的小尺寸和无连接性质,一些带宽仍然可用,虽然一些冗余机制,精心设计可能需要克服相对高的丢包比率。

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