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A Model Based on SVM for Predicting Spontaneous Combustion of Coal

机译:基于SVM的煤炭自燃预测模型。

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Spontaneous combustion of coal mostly relates to the thickness of minimum float coal. Therefore, a new predictive model for spontaneous combustion of coal is presented based on support vector machines (SVM). Based on the intensity of the wind leak and the temperature of the coal mine measured in the gob of fully mechanized top-coal carving face, a predictive model using support vector machines is established. Then the minimum thickness of the mine layer is predicted using the model, and gotten early warning spontaneous combustion of coal. The practical examples show that the method outperforms the radial basis function networks on both the prediction precision and the generation ability.
机译:煤的自燃主要与最小浮选煤的厚度有关。因此,提出了一种基于支持向量机(SVM)的煤自燃预测模型。根据漏风的强度和在综放工作面的采空区测得的煤矿温度,建立了基于支持向量机的预测模型。然后利用该模型预测了矿层的最小厚度,并得​​到了煤的自燃预警。实例表明,该方法在预测精度和生成能力上均优于径向基函数网络。

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