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Prediction of occupational accidents using decision tree approach

机译:利用决策树方法预测职业事故

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The focus of the present study is to build a predictive model which not only could predict the occupational incidents but also provide rules for explaining accident scenarios like near-miss, property damage, or injury cases. Classification and regression tree (CART) is used for prediction purpose. Furthermore, the parameters of CART have been tuned by grid based tuning and genetic algorithm (GA). The experimental results show that the GA optimized CART provides better accuracy than others. Additionally, the best rules extracted from GA optimized CART are discussed in order to adopt better safety precautionary measures at work.
机译:本研究的重点是建立一个预测模型,不仅可以预测职业事件,而且还提供了解释近乎未命中,财产损害或伤害案件等事故情景的规则。分类和回归树(推车)用于预测目的。此外,通过基于网格的调谐和遗传算法(GA)进行了推车参数。实验结果表明,GA优化推车提供比其他推车更好的精度。另外,讨论了从GA优化推车中提取的最佳规则,以便在工作中采用更好的安全预防措施。

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