基于GBDT和LR融合算法的变电站小动物控制应用

Zhaofeng Chen
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引用次数: 0

摘要

动物控制是变电站安全运行的一项重要任务。针对小动物控制中存在的问题,利用机器学习优越的预测能力,提出了一种结合梯度增强决策(GBDT)和逻辑回归(LR)算法的小动物危害等级预测模型。该模型将变电站运维数据与当地气象数据相结合,通过计算方差值进行特征筛选,并利用抽样技术实现类平衡。最后,该模型实现了变电站小动物危害等级的预测。通过使用不同的数据集,不使用GBDT算法训练模型,对预测结果进行比较分析。所提模型在各预测性能指标上均较好,验证了该方法的有效性。
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Application of Small Animals Control in Substation Based on GBDT and LR Fusion Algorithm
Animals control is an important task for the safe operation of substations. Aiming at the problems existing in the control of small animals, with the superior prediction ability of machine learning, a prediction model of small animals hazard grade is proposed, which combines gradient boosting decision (GBDT) and logistic regression (LR) algorithm. The model combined substation operation and maintenance data with local meteorological data, performs features screening by calculating the variance value, and achieves classes balance by using sampling technology. And finally the model achieves the prediction of small animals hazard grade in substation. By using different data sets and not using GBDT algorithm to train the model, the prediction results are compared and analyzed. The proposed model is better in all prediction performance indicators, which verifies the validity of the method.
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