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Use of Data Mining in Design of Soil Improvement by Jet Grouting

机译:喷射灌浆设计数据挖掘设计

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This paper addresses one of the main issues related to Jet Grouting (JG) technology, that is, the design of the mechanical properties of the soil-cement mixture. Thus, one of the most powerful Data Mining (DM) algorithms is applied, that is, Support Vector Machine (SVM), towards to the development of a new and more accurate approach for Uniaxial Compressive Strength (UCS) and stiffness prediction of both Jet Grouting Laboratory Formulations (JGLF) and soilcrete mixtures. The obtained results show that SVM algorithm can be used to accurately predict both strength and stiffness of JGLF. Related to soilcrete mixtures, it is shown that the SVM algorithm, despite some of the difficulties found, can give an important contribution for a better understanding of JG technology. Based on a detailed Sensitivity Analysis (SA) some important observations were made, which certainly will contribute for JG technical and economic efficiency improvement.
机译:本文涉及与喷射灌浆(JG)技术有关的主要问题之一,即土壤水泥混合物的机械性能设计。因此,应用了最强大的数据挖掘(DM)算法之一,即支持向量机(SVM),朝向开发开发新的和更准确的单轴抗压强度(UC)和两个喷射刚度预测的方法灌浆实验室配方(JGLF)和土壤混合物。所得结果表明,SVM算法可用于精确预测JGLF的强度和刚度。与土壤混合物有关,表明SVM算法尽管发现了一些困难,可以为更好地理解JG技术提供重要贡献。基于详细的敏感性分析(SA),制定了一些重要的观察,这肯定会为JG技术和经济效率提升有贡献。

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