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Applied Research Of BP Neural Network In Earthquake Prediction

机译:地震预测中BP神经网络的应用研究

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Nowadays, earthquake prediction is still a worldwide scientific problem, especially the prediction for short-term and imminent earthquake has no substantial breakthroughs. BP neural network technology has a strong non-linear mapping function which could better reflect the strong non-linear relationship between earthquake precursors and the time and the magnitude of a potential earthquake. In this paper, we selected the region of Beijing as the research area and 3 months as the prediction period. Based on BP neural network and integrated with the conventional linear regression method, a regional short-term integrated model was established, which gives the quantitative prediction for the earthquake magnitude. The results show that the earthquake magnitude prediction RMSE (root mean square error) of the integrated model reaches ± 0.28 Ms. Compared with conventional methods, the integrated model improves significantly. The new model has a good prospect to use BP neural network technology for earthquake prediction.
机译:目前,地震预测仍是一个世界性科学难题,尤其是预测短期和临震没有实质性的突破。 BP神经网络技术具有很强的非线性映射功能,可以更好地反映地震前兆的时间和潜在的地震震级之间的强非线性关系。在本文中,我们选择北京地区作为研究区域,3个月为预测期。基于BP神经网络上,并与传统的线性回归方法结合,一个区域短期综合模型成立,这给出了地震的震级的定量预测。结果表明:整合模型达到的震级预测RMSE(均方根误差)±0.28女士与常规方法相比,该集成模型显著提高。新模型具有良好的应用前景利用BP神经网络技术进行地震预测。

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