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Simulation research of industrial enterprise total profits based on the neural network of ARIMA

机译:基于Arima的神经网络的工业企业总利润仿真研究

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Industrial enterprise total profit is the important indicator to measure the status of industrial economic sentiment over a given period of time, and also the first indicator for researching the macroeconomic early-warning. In this paper, the ARIMA neural network model is built, through the ARIMA theory combined with neural network theory, using 1997-2015 monthly time series data of the industrial enterprise total profit, to carry out the simulation research of the industrial enterprise total profit. First of all, make the seasonal adjustment for industrial enterprise total profit, to get rid of the seasonal factors of industrial enterprise total profit in the time series. Secondly, to emulate the 1997 ~ 2015 monthly industrial enterprise total profit by ARIMA neural network model, the simulation results show a good simulation training effect. Finally, using ARIMA neural network model to carry on the simulation of the industrial enterprise total profit from January to June in 2016, finally get the simulation values of industrial enterprise total profit from January to June in 2016.
机译:工业企业总利润是在一段时间内衡量工业经济情绪状况的重要指标,以及第一个研究宏观经济早期预警的第一指标。本文采用了Arima神经网络模型,通过Arima理论结合神经网络理论,采用1997-2015每月时间序列数据的工业企业总利润,开展工业企业的仿真研究总利润。首先,为工业企业的季节性调整进行全面利润,摆脱工业企业的季节性因素在时间序列。其次,为了模仿1997〜2015年每月工业企业通过Arima神经网络模型的总利润,仿真结果显示出良好的仿真训练效果。最后,利用Arima神经网络模型在2016年1月至6月开始模拟工业企业总利润,终于从2016年1月到6月获得了工业企业总利润的模拟价值。

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