mm-Wave on wheels: Practical 60 GHz vehicular communication without beam training

Adrian Loch, A. Asadi, Gek Hong Sim, J. Widmer, M. Hollick
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引用次数: 41

Abstract

At vehicular speeds, the contact time during which a mobile node is in range of a fixed road side unit (RSU) is short. While this is not an issue if the RSU only needs to deliver textual information such as traffic updates, short contact times become problematic when transmitting a large amount of information. For instance, an RSU may need to deliver high volumes of local navigation data for an augmented reality application, or video material regarding tourist information of a nearby town. Millimeter-wave (mm-Wave) communication is highly promising for such scenarios since it provides order-of-magnitude larger throughput than the existing technologies operating at lower frequencies. However, the contact time in mm-Wave vehicular scenarios becomes even shorter due to the directional nature of the communication. This raises a fundamental question: can the high throughput of mm-Wave make up for the reduction in the contact time? In this paper, we analyze this trade-off and design a first-of-its-kind practical mm-Wave vehicular testbed to evaluate the resulting performance. Specifically, we consider alternative locations for the RSU other than at the side of the road, such as on top of a bridge or inside a roundabout. Moreover, we leverage that the road implicitly determines the direction in which the RSU expects a car to be located. This allows us to use fixed beam-steering at both the car and the RSU, thus avoiding costly beam-training. We validate our approach in real-world vehicular scenarios with actual traffic in a mid-sized town in Spain. The results show that our fixed beam-steering approach enables the RSU to transmit large amounts of data in a very short amount of time for a wide range of speeds. This allows us to provide detailed insights into the aforementioned fundamental question regarding the use of mm-Wave in vehicular scenarios.
车轮上的毫米波:实用的60 GHz车辆通信,无需波束训练
在车速下,移动节点在固定路侧单元(RSU)范围内的接触时间较短。如果RSU只需要传递文本信息(如交通更新),这不是问题,但在传输大量信息时,短的接触时间就会成为问题。例如,RSU可能需要为增强现实应用程序提供大量的本地导航数据,或者提供有关附近城镇旅游信息的视频材料。毫米波(mm-Wave)通信在这种情况下非常有前途,因为它提供的吞吐量比现有的低频率技术大一个数量级。然而,在毫米波车载场景下,由于通信的方向性,接触时间变得更短。这就提出了一个根本性的问题:毫米波的高通量能否弥补接触时间的减少?在本文中,我们分析了这种权衡,并设计了一个同类中第一个实用毫米波车载试验台来评估由此产生的性能。具体来说,我们会考虑RSU的其他位置,而不是在路边,比如桥顶或环形交叉路口。此外,我们利用道路隐含地决定了RSU期望汽车所在的方向。这使得我们可以在汽车和RSU上使用固定的波束转向,从而避免昂贵的波束训练。我们在西班牙一个中型城镇的真实交通场景中验证了我们的方法。结果表明,我们的固定波束导向方法使RSU能够在很短的时间内以很宽的速度传输大量数据。这使我们能够对上述关于在车载场景中使用毫米波的基本问题提供详细的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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