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The Important Role Played by Atmospheric Angular Momentum in the Non-linear Prediction of the Variations in the Length of Day

机译:大气角动量在非线性预测日长变化中的重要作用

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摘要

The variation in the length of day has complicated time-varying characteristics and the traditional method for linear time series analysis is always difficult to obtain good effect of prediction. If the non-linear artificial neural network technique is adopted to predict the variation in the length of day, the topological structure of the network model is determined by the least square error method. By taking into account the close relation between the variation in the length of day and the general circulation of atmosphere, the axial sequence of atmospheric angular momentum is introduced into the forecasting model of neural network. The results show that the forecast accuracy is significantly improved by taking advantage of the combination of the length of day and the atmospheric angular momentum sequence in comparison with the individual adoption of the data of the length of day.
机译:时间长度的变化具有复杂的时变特征,并且传统的线性时间序列分析方法始终很难获得良好的预测效果。如果采用非线性人工神经网络技术预测一天中的时间变化,则通过最小二乘误差法确定网络模型的拓扑结构。考虑到白天长度的变化与大气总环流之间的密切关系,将大气角动量的轴向序列引入到神经网络的预测模型中。结果表明,与单独采用日长数据相比,利用日长和大气角动量序列的组合可以显着提高预测准确性。

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