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Prediction Method of Deep Horizontal Displacement of Slope Soil Based on Damped Holt-Winters Model

机译:基于阻尼Holt-Winters模型的边坡深部水平位移预测方法

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The prediction of deep horizontal displacement of slope soil is an important part of slope deformation monitoring, which has important guiding significance for the prevention of slope safety accidents. Holt-Winters model is suitable to predict the data series of deep horizontal displacement of slope soil, which show both trend growth and seasonal fluctuation. Firstly, this paper selected the data set as the original data for empirical analysis which is deep horizontal displacement of soil after pretreatment from the specific slope monitoring project , then used the Holt-winters ’ damped model to perform data mining , finally, compared with the traditional prediction methods including the neural-network model and the k-nearest neighbor classification. The results show that the damped Holt-winters model has the highest prediction accuracy.
机译:边坡深部水平位移的预测是边坡变形监测的重要组成部分,对于预防边坡安全事故具有重要的指导意义。 Holt-Winters模型适用于预测边坡深水平位移的数据序列,该数据序列既显示趋势增长又显示季节波动。首先,从特定的边坡监测工程中,选择了预处理后的深水平位移的数据集作为经验分析的原始数据,然后利用Holt-Winters的阻尼模型进行数据挖掘,最后与传统的预测方法包括神经网络模型和k最近邻分类。结果表明,阻尼Holt-Winters模型具有最高的预测精度。

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