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Stability assessment of hard rock pillars using two intelligent classification techniques: A comparative study

机译:两种智能分类技术对硬岩柱的稳定性评估:对比研究

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摘要

One of the most challenging safety problems in underground hard rock mines is pillar stability during mining operation. This paper presents an assessment of J48 and SVC application for pillar stability prediction in underground hard rock mines. Based on a database compiled from various hard rock mines and using these algorithms, two stability graphs are developed. The performance assessment of models indicates that both models can predict pillar stability with acceptable accuracy. In comparison with logistic regression model, the prediction capability of J48 and SVC models is better, but the J48 model shows superiority over two other models.
机译:地下硬岩矿井中最具挑战性的安全问题之一是采矿作业期间的支柱稳定性。本文介绍了J48和SVC在地下硬岩矿井柱稳定性预测中的应用评估。基于从各种硬岩矿山收集的数据库并使用这些算法,开发了两个稳定性图。模型的性能评估表明,两个模型都可以以可接受的精度预测支柱稳定性。与逻辑回归模型相比,J48和SVC模型的预测能力更好,但J48模型显示出优于其他两个模型的优势。

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