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Forecast and analysis of coal mine safety accidents based on BP Neural Network and GM Model

机译:基于BP神经网络和GM模型的煤矿安全事故预测与分析。

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摘要

With the rapid development of coal industry, China has become the largest coal-consuming country in the world, but coal mining accidents frequently happen. Therefore, safety situations in production cannot be ignored. Safety accident forecast is a crucial measure to reduce the accident incidence of coal mine enterprises. In this thesis, BP Neural Network and GM Model are combined to forecast and analyze safety accidents of coal mines. Improved forecast accuracy will provide coal mine enterprises with more precise data, on which they will base their scientific safety management.
机译:随着煤炭工业的快速发展,中国已成为世界上最大的煤炭消费国,但煤矿事故频发。因此,生产中的安全状况不容忽视。安全事故预测是降低煤矿企业事故发生率的关键措施。本文结合BP神经网络和GM模型对煤矿安全事故进行了预测和分析。改进的预测准确性将为煤矿企业提供更精确的数据,他们将以此为基础进行科学的安全管理。

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