首页> 外文期刊>International journal of antennas and propagation >Application of Hybrid ARIMA and Artificial Neural Network Modelling for Electromagnetic Propagation: An Alternative to the Least Squares Method and ITU Recommendation P.1546-5 for Amazon Urbanized Cities
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Application of Hybrid ARIMA and Artificial Neural Network Modelling for Electromagnetic Propagation: An Alternative to the Least Squares Method and ITU Recommendation P.1546-5 for Amazon Urbanized Cities

机译:混合ARIMA和人工神经网络模型对电磁传播的应用:亚马逊城市化城市最小二乘法和ITU建议的替代方案。

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This study sets out an empirical hybrid autoregressive integrated moving average (ARIMA) and artificial neural network (ANN) model designed to estimate electromagnetic wave propagation in densely forested urban areas. Received signal power intensity data was acquired through measurement campaigns carried out in the Metropolitan Area of Belém (MAB), in the Brazilian Amazon. Comparisons were made between estimates from classical least squares (LS) fitting and ITU (International Telecommunication Union) recommendation P. 1546-5. The results indicate the model is, at least, 44% more precise than every ITU estimate and, in some situations, is at least 11% better than an LS estimate, depending on the respective values of the relative error (RE).
机译:本研究规定了经验化的混合自回归综合移动普通(ARIMA)和人工神经网络(ANN)模型,旨在估算密集森林城市地区的电磁波传播。通过巴西亚马逊在巴西亚马逊的Belém(MAB)中的测量活动获得了收到的信号功率强度数据。在经典最小二乘(LS)拟合和ITU(国际电信联盟)建议书的估计之间进行了比较.1546-5。结果表明,该模型至少比每个ITU估计更精确,在某些情况下,比LS估计更好地,这取决于相对误差(RE)的相应值,至少11%。

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