دورية أكاديمية

XGB Model: Research on Evaporation Duct Height Prediction Based on XGBoost Algorithm.

التفاصيل البيبلوغرافية
العنوان: XGB Model: Research on Evaporation Duct Height Prediction Based on XGBoost Algorithm.
المؤلفون: Wenpeng ZHAO, Jincai LI, Jun ZHAO, Dandan ZHAO, Jingze LU, Xiang WANG
المصدر: Radioengineering; 2020, Vol. 29 Issue 1, p81-93, 13p
مصطلحات موضوعية: FORECASTING, ELECTROMAGNETIC wave propagation, DEEP learning, ALGORITHMS, ALTITUDES
مستخلص: Evaporation duct is a specific atmospheric structure at sea, which has an important influence on the propagation path of electromagnetic waves (EW). Considering the limit of existing evaporation duct height (EDH) prediction models and aiming at proposing more accurate and stronger generalization ability of EDH models, we applied eXtreme Gradient Boosting (XGBoosting) algorithm to the field of evaporation duct for the first time. And we proposed the new EDH prediction model using XGBoost algorithm (XGB model). Simultaneously, traditional Paulus-Jeske (PJ) model and deep learning Multilayer Perceptron (MLP) model were introduced into the experiment to make a comparison. In terms of comprehensive performance, XGB model is optimal in all sub-regions and total area. Finally, cross-learning experiments were carried out to test the generalization ability of XGB model. The results show that the generalization ability of XGB model is better than that of MLP model. [ABSTRACT FROM AUTHOR]
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قاعدة البيانات: Supplemental Index
الوصف
تدمد:12102512
DOI:10.13164/re.2020.0081