论文标题

建模5G泄漏对天气预测的影响

Modeling the Impact of 5G Leakage on Weather Prediction

论文作者

Yousefvand, Mohammad, Wu, Chung-Tse Michael, Wang, Ruo-Qian, Brodie, Joseph, Mandayam, Narayan

论文摘要

在26 GHz频谱中分配的5G频段称为3GPP频段N258,在包括国家海洋和大气管理(NOAA)在内的气象数据预测社区中引起了很多焦虑和关注。与传统的谱存共存问题不同,此处的问题源于N258频带传输的泄漏,影响了在23.8 GHz的被动传感器(例如AMSU-A)对天气卫星运行的观察结果(例如AMSU-A),该卫星用于检测大气中水蒸气的量,这反过来影响天气预测和预测。在本文中,我们研究了5G泄漏对基于数据同化的天气预测算法准确性的影响,通过使用一阶传播模型来表征泄漏信号对亮度温度(大气辐射)的影响(大气辐射)和诱导的噪声温度对被动传感器(辐射仪)对天气观察卫星的接收天线的诱导噪声温度。然后,我们在使用天气研究和预测数据同化模型(WRFDA)来预测温度和降雨时表征所得的不准确性。例如,-20dBW泄漏到-15DBW对著名的超级星期二龙卷风爆发数据集的影响会影响气象预测在降水量高达0.9 mm,而在2m温解的降水量为1.3°C。我们概述了未来的方向,以改善5G泄漏效应的建模以及使用跨层天线技术以及资源分配的跨层天线技术的缓解。

The 5G band allocated in the 26 GHz spectrum referred to as 3GPP band n258, has generated a lot of anxiety and concern in the meteorological data forecasting community including the National Oceanic and Atmospheric Administration (NOAA). Unlike traditional spectrum coexistence problems, the issue here stems from the leakage of n258 band transmissions impacting the observations of passive sensors (e.g. AMSU-A) operating at 23.8 GHz on weather satellites used to detect the amount of water vapor in the atmosphere, which in turn affects weather forecasting and predictions. In this paper, we study the impact of 5G leakage on the accuracy of data assimilation based weather prediction algorithms by using a first order propagation model to characterize the effect of the leakage signal on the brightness temperature (atmospheric radiance) and the induced noise temperature at the receiving antenna of the passive sensor (radiometer) on the weather observation satellite. We then characterize the resulting inaccuracies when using the Weather Research and Forecasting Data Assimilation model (WRFDA) to predict temperature and rainfall. For example, the impact of 5G leakage of -20dBW to -15dBW on the well-known Super Tuesday Tornado Outbreak data set, affects the meteorological forecasting up to 0.9 mm in precipitation and 1.3 °C in 2m-temperature. We outline future directions for both improved modeling of 5G leakage effects as well as mitigation using cross-layer antenna techniques coupled with resource allocation.

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