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Statistical Inference on Spectrum Data for Design and Enforcement of Harm Claim Thresholds

机译:对频谱数据进行统计推断,以设计和执行有害索偿阈值

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Harm claim thresholds (HCTs) are a promising approach for regulators to specify interference limits in a technology-neutral fashion, and a useful parameter spectrum access systems can use to manage the aggregate interference caused by transmitters they control. However, existing literature provides very little guidance how HCTs should be set and enforced. In this paper, we propose a detailed regulatory framework for gathering and processing of measurement data for enforcing and setting HCTs. We introduce the central concepts of stratification and weighting of measurement data, and show their importance in ensuring representativeness of measurements and enabling robust estimation of statistical confidence on results. For deriving HCT thresholds from measurements, we propose additional representativeness criteria that a regulator should apply to avoid underestimation of field strength levels related to existing wireless services. We demonstrate application of our proposed framework using an extensive drive test data set, and show that the chosen HCT percentile is critical in determining how much data needs to be gathered for enforcement. We also show how spatial prediction techniques can be used to deal with data sets that have been collected non-uniformly over the region of interest, emphasizing the need for modern bias-corrected techniques.
机译:有害索偿阈值(HCT)是监管机构以技术中立的方式指定干扰限值的一种有前途的方法,频谱访问系统可以使用有用的参数来管理由其控制的发射机引起的总干扰。但是,现有文献很少提供有关如何设置和实施HCT的指导。在本文中,我们提出了一个详细的监管框架,用于收集和处理用于执行和设置HCT的测量数据。我们介绍了测量数据分层和加权的中心概念,并展示了它们在确保测量的代表性和对结果的统计置信度进行可靠估计方面的重要性。为了从测量中得出HCT阈值,我们提出了监管机构应采用的其他代表性标准,以避免低估与现有无线服务相关的场强水平。我们使用广泛的路测数据集演示了我们提出的框架的应用,并表明所选的HCT百分位数对于确定需要收集多少数据以进行实施至关重要。我们还展示了如何使用空间预测技术来处理在感兴趣区域内非均匀收集的数据集,强调了对现代偏差校正技术的需求。

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