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Research of Strategic Transformation of SMEs in China from International Perspective

机译:国际视角下中国中小企业战略转型研究

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With market-oriented opening in the China's civil aviation industry and the rapid development of China's economy, China's civil aviation transportation fuel consumption has grown significantly in nearly past three decades. Therefore, it's a very important strategic significance of the prediction of China's civil aviation transportation fuel consumption. In this paper, by using gray system and neural network approach, combined with China's civil aviation industry 1980-2010 total traffic volume of the data, we establish gray system GM (1,1) model and BP neural network model for civil aviation transport volume. Training and simulation of the back propagation neutral network model and the gray system GM(1,1) are used by MATLAB. BP neural network modeling takes into account three factors: the number of aircraft aviation industry, flight hours and total turnover. The fitting precision of the gray system GM(1,1) model is 64.2% while the fitting precision of the back propagation neutral network model is 90.16%. Thus, the back propagation neutral network model is better for estimating civil aviation fuel consumption.
机译:随着中国民航业的市场开放,中国经济的快速发展,中国的民航运输燃料消耗在近三十年来近三十年来大幅发展。因此,这是中国民航运输燃料消耗预测的一个非常重要的战略意义。本文采用灰色系统和神经网络方法,结合中国民航业1980-2010数据的总流量,建立了灰色系统通用(1,1)模型和BP神经网络模型的民航输送量。 Matlab使用后传播中性网络模型和灰色系统GM(1,1)的培训和仿真。 BP神经网络建模考虑到三种因素:飞机航空工业,飞行时间和总营业额的数量。灰色系统GM(1,1)模型的拟合精度为64.2%,而后传播中性网络模型的拟合精度为90.16%。因此,后传播中性网络模型更好地估计民航燃料消耗。

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