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A New Predictive Model for Rock Strength Parameters Utilizing GEP Method

机译:利用GEP方法的岩石强度参数的一种新预测模型

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The present study aims to employ modern intelligent method to predict intact rock strength parameters. This method can be used for intact rock strength parameters prediction of different extraction projects. Mechanical rock excavation projects need uniaxial compressive strength (UCS) and static modulus of elasticity (E) of the intact rock material. Many parameters affect to strength parameters, but some of them are applicable to empirical or analytical equations and the other difficulty, high-quality core samples of appropriate geometry are needed to find out these parameters. In this regard, models predicting UCS and E based on rock index tests and intact rock properties could be useful methods. This paper aims to employ Gene Expression Programming (GEP) to predict E and UCS. Out of the 44 sets of the data, 22 sets (50% of the data) were considered for training and the remaining 22 sets of the data (50%) were considered for testing. The intelligent method has been studied on the basis of data obtained from 44 different excavation projects all over the world. These parameters were collected from previous research data. The values of UCS and E are predicted by using quartz content (Q), dry density (γd) and porosity (n) of the rocks. 22 datasets (50% of the data) were utilized for modeling and the remaining 22 sets of the data (50%) were considered for evaluating theirs performance. For this purpose, writing a code was necessary, as some of the proposed relations were complex. The obtained results of this study are presented within a computer-based format in order to be easily accessible too every experts. With respect to the accuracy of the GEP method, it may be recommended for predicting intact rock strength parameters for future excavation design purpose.
机译:本研究旨在采用现代智能方法来预测完整的岩石强度参数。该方法可用于不同提取项目的完整岩石强度参数预测。机械岩石挖掘项目需要完整岩石材料的单轴抗压强度(UCS)和静态弹性模量(e)。许多参数影响强度参数,但其中一些适用于经验或分析方程,其他困难,需要适当几何体的高质量核心样本来找出这些参数。在这方面,预测基于岩石指数测试和完整岩石属性的UCS和E的模型可能是有用的方法。本文旨在使用基因表达编程(GEP)来预测E和UCS。在44套数据中,考虑了22套(50%的数据)进行培训,剩下的22套数据(50%)被考虑进行测试。智能方法已经基于从世界各地的44个不同的挖掘项目获得的数据进行研究。从以前的研究数据收集这些参数。通过使用岩石的石英含量(Q),干密度(γd)和孔隙率(n)来预测UCS和E的值。 22数据集(50%的数据)用于建模,剩余的22套数据(50%)被认为是评估其性能。为此目的,正如一些拟议的关系都很复杂,写入代码。本研究的获得结果在基于计算机的格式内呈现,以便易于使用每个专家。关于GEP方法的准确性,可能建议预测未来的挖掘设计目的的完整岩石强度参数。

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