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BLE channel model analysis for SARS-COV2 location and tracking applications

机译:SARS-COV2位置和跟踪应用的BLE通道模型分析

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Mutual proximity and exposure time can provide critical information to assess the risk of propagation of highly contagious viruses such as SARS- CoV2. To this extent, Bluetooth Low Energy (BLE) represents the best candidate in the low range communication technologies to estimate the proximity distance between smartphones by means of ranging algorithm based on Received Signal Strength Indicator (RSSI) measurements. Although promising, the high variability of the radio propagation channel for ISM-band technologies suggests that a deep analysis of BLE is needed in order to isolate the different propagation factors. In this paper we show, through extensive measurements, the fluctuation of BLE channel in various environments and provide a ray tracing model to fully capture the BLE channel behavior. Results show how unpredictable BLE measurements become at increasing distances and under different positioning configurations, leading to misleading detections for contact tracing apps. A possible solution could be to introduce the use of mathematical models to capture core aspects of population mobility in order to estimate realistic exposure information.
机译:相互接近和曝光时间可以提供关键信息,以评估高度传染性病毒如SARS-COV2的传播风险。在这种程度上,蓝牙低能量(BLE)表示低范围通信技术中的最佳候选者,以通过基于接收的信号强度指示符(RSSI)测量的测距算法来估计智能手机之间的接近距离。虽然有希望的是ISM频段技术的无线电传播信道的高可变性表明,需要对BLE进行深度分析,以隔离不同的传播因子。在本文中,我们通过广泛的测量显示了各种环境中的BLE通道的波动,并提供了光线跟踪模型,以完全捕捉BLE信道行为。结果表明,难以预测的BLE测量如何变为越来越多的距离和不同定位配置,导致联系跟踪应用程序的误导性检测。可能的解决方案可以是介绍数学模型的使用,以捕获人口流动性的核心方面,以估计现实的曝光信息。

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