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Induction and pruning of classification rules for prediction of microseismic hazards in coal mines

机译:归类和修剪预测煤矿微震危害的分类规则

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摘要

The paper presents results of application of a rule induction and pruning algorithm for classification of a microseismic hazard sate in coal mines. Due to imbalanced distribution of examples describing states "hazardous" and "safe", the special algorithm was used for induction and rule pruning. The algorithm selects optimal parameters' values influencing rule induction and pruning based on training and tuning sets. A rule quality measure which decides about a form and classification abilities of rules that are induced is the basic parameter of the algorithm. The specificity and sensitivity of a classifier were used to evaluate its quality. Conducted tests show that the admitted method of rules induction and classifier's quality evaluation enables to get better results of classification of microseismic hazards than by methods currently used in mining practice. Results obtained by the rules-based classifier were also compared with results got by a decision tree induction algorithm and by a neuro-fuzzy system.
机译:本文介绍了规则归纳和修剪算法在煤矿微震危险性分类中的应用结果。由于描述状态“危险”和“安全”的示例分布不均衡,因此使用特殊算法进行归纳和规则修剪。该算法根据训练和调整集选择影响规则归纳和修剪的最佳参数值。决定所诱导规则的形式和分类能力的规则质量度量是算法的基本参数。使用分类器的特异性和敏感性来评估其质量。进行的测试表明,与目前采矿实践中使用的方法相比,公认的规则归纳和分类器质量评估方法能够获得更好的微震危险分类结果。还比较了基于规则的分类器获得的结果与决策树归纳算法和神经模糊系统获得的结果。

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