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Path loss models with distance-dependent weighted fitting and estimation of censored path loss data

机译:具有距离相关的加权拟合的路径损耗模型和经过审查的路径损耗数据的估计

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摘要

Path loss models are the most fundamental part of wireless propagation channel models. Path loss is typically modelled as a (single-slope or multi-slope) power-law dependency on distance plus a log-normally distributed shadowing attenuation. Determination of the parameters of this model is usually done by fitting the model to results from measurements or ray tracing. The authors show that the typical least-square fitting to those data points is inherently biased to give the best fitting to the link distances that happen to have more evaluation points. A weighted fitting method is developed that emphasises the accuracy at the distance range that is consciously chosen by the user as most important for a system simulation. As a further important point that is typically not taken into account for path loss parameter extraction, the authors show that typically measurement data (but also ray tracing) is censored, i.e. path loss values above a certain threshold cannot be measured. The authors present examples of weighted fitting models, and models with and without the censored data, for 28 GHz channels in urban macrocells, and show that these effects have a significant impact on the extracted parameters and that the fitting accuracy can be improved with the presented methods.
机译:路径损耗模型是无线传播信道模型的最基本部分。路径损耗通常被建模为对距离的(单斜率或多斜率)幂律依赖性以及对数正态分布的阴影衰减。通常通过使模型适合测量或光线跟踪的结果来确定此模型的参数。作者表明,对那些数据点的典型最小二乘拟合固有地存在偏差,以使恰好具有更多评估点的链接距离获得最佳拟合。开发了一种加权拟合方法,该方法强调了用户有意识地选择的距离范围内的精度,这对于系统仿真是最重要的。作为通常对于路径损耗参数提取没有考虑的另一个重要点,作者表明,通常对测量数据(但也包括光线跟踪)进行检查,即无法测量高于某个阈值的路径损耗值。作者介绍了加权拟合模型的示例,以及城市宏小区中28 GHz信道的带或不带删失数据的模型,并表明这些影响对提取的参数有重大影响,并且拟合精度可以通过本文提出来提高方法。

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