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Radio Propagation Analysis of Industrial Scenarios within the Context of Ultra-Reliable Communication

机译:超可靠通信环境下工业场景的无线电传播分析

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One of the 5G use cases, known as ultra- reliable communication (URC), is expected to support very low packet error rate on the order of $10^{-5}$ with a 1 ms latency. In an industrial scenario, this would make possible replacing wired connections with wireless for controlling critical processes. Industrial environments with large metallic machinery and concrete structures can lead to deep shadowing and severe fading in the radio propagation channel, and thus pose a challenge for achieving the outage levels in connection with URC. In this paper, we present and analyze the large-scale propagation characteristics of two different industrial environments - open production space and dense factory clutter - based on measurements conducted at 2.3 and 5.7 GHz. By including a large number of spatially distributed samples, as per our experimental approach, we show the importance of properly characterizing the large-scale fading outage for URC. For instance, we show that based on a simple one-slope distance dependent path loss model, the conventional log-normal model for large-scale shadow fading is by far too simple for this environment. Our results show that at the 10^{-4} percentile, the tail of the shadow fading distribution can deviate by up to 10-20 dB from the log-normal model with respect to the average NLOS values (around 6 dB and 8 dB at 2.3 and 5.7 GHz, respectively). The simplicity of the one-slope path loss model, and its ability as we show, to express the trends with respect to scenarios, frequencies, and antenna heights, makes it an attractable option. However, there is a need for further experimental insight, possibly in combination with deterministic analysis, to get a better understanding of the large-scale fading for the study of URC in industrial environments.
机译:5G用例之一被称为超可靠通信(URC),预计将支持非常低的数据包错误率,约为10 ^ {-5} $,延迟为1毫秒。在工业场景中,这将有可能用无线代替有线连接来控制关键过程。具有大型金属机械和混凝土结构的工业环境可能导致无线电传播信道中的深层阴影和严重褪色,因此对实现与URC有关的中断水平提出了挑战。在本文中,我们基于在2.3和5.7 GHz下进行的测量,介绍并分析了两个不同工业环境(开放的生产空间和密集的工厂混乱)的大规模传播特性。根据我们的实验方法,通过包含大量空间分布的样本,我们显示了正确表征URC大规模衰落中断的重要性。例如,我们表明,基于简单的与坡度相关的路径损耗模型,对于这种环境,常规的用于大范围阴影衰落的对数正态模型实在是太简单了。我们的结果表明,相对于平均NLOS值(大约6 dB和8 dB),在10 ^ {-4}%时,阴影衰落分布的尾部与对数正态模型的偏差可能高达10-20 dB。分别为2.3 GHz和5.7 GHz)。单斜率路径损耗模型的简单性及其所展示的表达场景,频率和天线高度趋势的能力使其成为一种引人注目的选择。然而,需要进一步的实验洞察力,可能与确定性分析相结合,以更好地理解工业环境中URC研究的大规模衰落。

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