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灰色关联优化BP神经网络预测工作面瓦斯涌出量 被引量:15
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作者 雷文杰 刘瑞涛 苏国韶 《矿业安全与环保》 北大核心 2013年第5期34-37,41,共5页
根据义马中部井田瓦斯地质规律,选取埋深、开采强度、开采顺序和煤层厚度作为自变量,瓦斯涌出量为目标量,构建自变量矩阵和参考序列,进行瓦斯涌出量影响因素灰色关联度分析;由于各瓦斯地质影响因素与瓦斯涌出量的高度非线性关系,将各影... 根据义马中部井田瓦斯地质规律,选取埋深、开采强度、开采顺序和煤层厚度作为自变量,瓦斯涌出量为目标量,构建自变量矩阵和参考序列,进行瓦斯涌出量影响因素灰色关联度分析;由于各瓦斯地质影响因素与瓦斯涌出量的高度非线性关系,将各影响因素进行归一化处理,建立优化神经网络预测瓦斯涌出量数值模型,样本训练收敛速度快,误差在0.12%以内,并用此模型对耿村井田深部煤层瓦斯涌出量进行了预测。 展开更多
关键词 瓦斯地质 多因素 灰色关联分析 优化神经网络 模型样本训练 瓦斯涌出量预测
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Application of Support Vector Machine to Ship Steering 被引量:3
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作者 罗伟林 邹早建 李铁山 《Journal of Shanghai Jiaotong university(Science)》 EI 2009年第4期462-466,共5页
System identification is an effective way for modeling ship manoeuvring motion and ship manoeuvrability prediction. Support vector machine is proposed to identify the manoeuvring indices in four different response mod... System identification is an effective way for modeling ship manoeuvring motion and ship manoeuvrability prediction. Support vector machine is proposed to identify the manoeuvring indices in four different response models of ship steering motion, including the first order linear, the first order nonlinear, the second order linear and the second order nonlinear models. Predictions of manoeuvres including trained samples by using the identified parameters are compared with the results of free-running model tests. It is discussed that the different four categories are consistent with each other both analytically and numerically. The generalization of the identified model is verified by predicting different untrained manoeuvres. The simulations and comparisons demonstrate the validity of the proposed method. 展开更多
关键词 ship steering parameter identification response model support vector machine
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